Difference between revisions of "Ethylene" - New World Encyclopedia

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'''Ethylene''' (or [[IUPAC]] name '''ethene''') is the [[chemical compound]] with the formula C<sub>2</sub>H<sub>4</sub>. It is the simplest [[alkene]].  Because it contains a double bond, ethylene is called an ''unsaturated hydrocarbon'' or an ''olefin''. It is extremely important in industry and even has a role in biology as a [[hormone]].<ref name=Wang_2002>Wang K., H. Li, J. Ecker. Ethylene biosynthesis and signaling networks. ''Plant Cell''. 14 Suppl:S131-51.</ref> Ethylene is the most produced [[organic compound]] in the world; global production of ethylene exceeded 75 million metric tons per year in 2005.<ref>2006. Production: Growth is the Norm. ''Chemical and Engineering News''. p. 59.</ref>
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'''Ethylene''' (or [[IUPAC]] name '''ethene''') is a [[chemical compound]] with the formula C<sub>2</sub>H<sub>4</sub>. Each molecule contains a double bond between the two carbon atoms, and for this reason it is classified as an '''[[alkene]],''' '''olefin,''' or '''unsaturated hydrocarbon.''' At ordinary temperatures and pressures, it is a colorless [[gas]].
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{{toc}}
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Ethylene acts as a [[hormone]] in [[plant]]s, regulating the [[ripening]] of [[fruit]], opening of [[flower]]s, and shedding of [[leaves]].<ref name=Wang_2002>K. Wang, H. Li, and J. Ecker, Ethylene biosynthesis and signaling networks, ''Plant Cell'' 14 Suppl: S131-51.</ref> It is also extremely important in industry and is the most abundantly produced [[organic compound]] in the world. Global production of ethylene exceeded 75 million metric tons per year in 2005.<ref>Production: Growth is the Norm, ''Chemical and Engineering News'' 59.</ref> It can undergo many types of chemical reactions to generate a wide variety of chemical products.
  
 
== History==
 
== History==
 +
Ethylene was first synthesized in 1795 by a collaboration of four [[Netherlands|Dutch]] chemists. From then on, it was referred to as the ''olefiant gas'' (oil-making gas), because it combined with [[chlorine]] to produce the "oil of the Dutch chemists" ([[1,2-Dichloroethane|1,2-dichloroethane]]).
  
From 1795 on, ethylene was referred to as the ''olefiant gas'' (oil-making gas), because it combined with [[chlorine]] to produce the "oil of the Dutch chemists" ([[1,2-Dichloroethane|1,2-dichloroethane]]), first synthesized in 1795 by a collaboration of four [[Netherlands|Dutch]] chemists.
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In the mid-nineteenth century, ''ethylene'' (C<sub>2</sub>H<sub>4</sub>) was thought of as the "daughter" of the [[functional group]] [[ethyl]] (C<sub>2</sub>H<sub>5</sub>). Around that time, the suffix ''-ene'' (an Ancient Greek root added to the end of female names meaning "daughter of") was widely used to refer to a molecule (or molecular component) that contained one less hydrogen atom than the molecule being modified. Thus, by adding this suffix to "ethyl," the name "ethylene" was derived.
 
 
In the mid-nineteenth century, the suffix ''-ene'' (an Ancient Greek root added to the end of female names meaning "daughter of") was widely used to refer to a molecule or part thereof that contained one fewer hydrogen atoms than the molecule being modified. Thus, ''ethylene'' (C<sub>2</sub>H<sub>4</sub>) was the "daughter of [[ethyl]]" (C<sub>2</sub>H<sub>5</sub>).  The name ethylene was used in this sense as early as 1852.
 
  
In 1866, the [[Germany|German]] chemist [[August Wilhelm von Hofmann]] proposed a system of hydrocarbon nomenclature in which the suffixes -ane, -ene, -ine, -one, and -une were used to denote the hydrocarbons with 0, 2, 4, 6, and 8 fewer hydrogens than their parent [[alkane]].<ref>Hofmann, A.W. 1866. [http://www.chem.yale.edu/~chem125/125/history99/5Valence/Nomenclature/Hofmannaeiou.html Hofmann's Proposal for Systematic Nomenclature of the Hydrocarbons : "On the Action of Trichloride of Phosphorus on the Salts of the Aromatic Monamines"]. Retrieved September 12, 2007.</ref> In this system, ethylene became ''ethene''. Hofmann's system eventually became the basis for the Geneva nomenclature approved by the International Congress of Chemists in 1892, which remains at the core of the [[IUPAC]] nomenclature. However, by that time, the name ethylene was deeply entrenched, and it remains in wide use today, especially in the chemical industry.
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In 1866, [[Germany|German]] chemist [[August Wilhelm von Hofmann]] proposed a system of hydrocarbon nomenclature in which the suffixes -ane, -ene, -ine, -one, and -une were used to denote hydrocarbons with 0, 2, 4, 6, and 8 fewer hydrogen atoms (per molecule) than their parent [[alkane]].<ref>A.W. Hofmann, [http://www.chem.yale.edu/~chem125/125/history99/5Valence/Nomenclature/Hofmannaeiou.html Hofmann's Proposal for Systematic Nomenclature of the Hydrocarbons: "On the Action of Trichloride of Phosphorus on the Salts of the Aromatic Monamines."] Retrieved September 12, 2007.</ref> In this system, ethylene became ''ethene''. Hofmann's system eventually became the basis for the Geneva nomenclature approved by the International Congress of Chemists in 1892, which remains at the core of the [[IUPAC]] nomenclature. By then, however, the name ethylene was deeply entrenched, and it remains in wide use today, especially in the chemical industry.
  
The 1979 IUPAC nomenclature rules make an exception for retaining the non-systematic name ethylene<ref>[http://www.acdlabs.com/iupac/nomenclature/79/r79_53.htm#a_3__1 IUPAC nomenclature rule A-3.1 (1979)]. Retrieved September 12, 2007.</ref>, however, this decision was reversed in the 1993 rules<ref>[http://www.acdlabs.com/iupac/nomenclature/93/r93_684.htm Footnote to IUPAC nomenclature rule R-9.1, table 19(b)]. Retrieved September 12, 2007.</ref>.
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The 1979 IUPAC nomenclature rules made an exception for retaining the non-systematic name ethylene,<ref>ACD Labs, [http://www.acdlabs.com/iupac/nomenclature/79/r79_53.htm#a_3__1 IUPAC nomenclature rule A-3.1 (1979).] Retrieved September 12, 2007.</ref> but this decision was reversed in the 1993 rules.<ref>ACD Labs, [http://www.acdlabs.com/iupac/nomenclature/93/r93_684.htm Footnote to IUPAC nomenclature rule R-9.1, table 19(b).] Retrieved September 12, 2007.</ref>
  
 
==Structure==
 
==Structure==
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Each molecule of ethylene contains a pair of [[carbon]] atoms that are connected to each other by a [[double bond]], one of which is called a π-bond (pi bond) and the other is called a σ-bond (sigma bond). In addition, two [[hydrogen]] [[atom]]s are bound to each carbon atom. All six atoms in an ethylene molecule are [[coplanar]]. The H-C-H [[angle]] is 117°. The molecule is also relatively rigid: rotation about the C-C bond is a high energy process that requires breaking the π-bond, while retaining the σ-bond between the carbon atoms.
  
This [[hydrocarbon]] has four [[hydrogen]] [[atom]]s bound to a pair of [[carbon]] atoms that are connected by a [[double bond]]. All six atoms that comprise ethylene are [[coplanar]].  The H-C-H [[angle]] is 117°, close to the 120° for ideal sp<sup>2</sup> [[hybridization (chemistry)|hybridized]] carbon.  The molecule is also relatively rigid: rotation about the C-C bond is a high energy process that requires breaking the π-bond, while retaining the σ-bond between the carbon atoms.
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=== Reactivity based on structure ===
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The double bond in ethylene is a region of high [[electron density]], and most reactions of ethylene occur at this double bond position. In particular, the π-bond (which is weaker than the σ-bond) is broken in [[addition reaction]]s to produce many useful products. By comparison, [[alkane]]s, which contain only σ-bonds, are less reactive than ethylene.
  
The double bond is a region of high [[electron density]], and most reactions occur at this double bond position.
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=== Interpretation of its spectrum ===
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Although ethylene is a relatively simple molecule, its [[Spectroscopy|spectrum]]<ref name=NIST_Webbook>NIST Webbook, [http://webbook.nist.gov/cgi/cbook.cgi?ID=C74851&Units=SI&Mask=400#UV-Vis-Spec Ethylene:UV/Visible Spectrum,] NIST Webbook. Retrieved September 12, 2007.</ref> is considered one of the most difficult to explain adequately from both a theoretical and practical perspective. For this reason, it is often used as a test case in [[computational chemistry]]. Of particular note is the difficulty in characterizing the ultraviolet absorption of the molecule. Interest in the subtleties and details of the ethylene spectrum can be dated back to at least the 1950s.
  
 
== Production ==
 
== Production ==
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In the [[petrochemical]] industry, ethylene is produced by a process known as ''[[steam cracking]]''. In this process, gaseous or light liquid hydrocarbons are briefly heated to 750&ndash;950 °C, inducing numerous [[free radical]] [[chemical reaction|reactions]]. This process converts large hydrocarbons into smaller ones and introduces unsaturation (that is, double bonds). Ethylene is separated from the resulting complex mixture by repeated [[Physical compression|compression]] and [[distillation]]. In a related process used in oil refineries, high molecular weight hydrocarbons are cracked over [[Zeolite]] catalysts.
  
Ethylene is produced in the [[petrochemical]] industry by [[steam cracking|steam "cracking"]].  In this process, gaseous or light liquid hydrocarbons are briefly heated to 750&ndash;950 °C, inducing numerous [[free radical]] [[chemical reaction|reactions]].  This process converts large hydrocarbons into smaller ones and introduces unsaturation.  Ethylene is separated from the resulting complex mixture by repeated [[Physical compression|compression]] and [[distillation]].  In a related process used in oil refineries, high molecular weight hydrocarbons are cracked over [[Zeolite]] catalysts.  Heavier feedstocks, such as naphtha and gas oils require at least two "quench towers" downstream of the cracking furnaces to recirculate pyrolysis-derived gasoline and process water. When cracking a mixture of ethane and propane, only one water quench tower is required.<ref name=Keystone>Kniel, Ludwig. 1980. ''Ethylene Keystone to the Petrochemical Industry''. New York, NY: Marcel Dekker. ISBN 0-8247-6914-7</ref>
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Heavier feedstocks, such as [[naphtha]] and gas oils, require at least two "quench towers" downstream of the cracking furnaces to recirculate pyrolysis-derived gasoline and process water. When cracking a mixture of ethane and propane, only one water quench tower is required.<ref name=Keystone>Ludwig Kniel, ''Ethylene Keystone to the Petrochemical Industry'' (New York, NY: Marcel Dekker, 1980, ISBN 0-8247-6914-7).</ref>
 
 
The areas of an ethylene plant are:
 
1) steam cracking furnaces;
 
2) primary and secondary heat recovery with quench;
 
3) a dilution steam recycle system between the furnaces and the quench system;
 
4) primary compression of the cracked gas (3 stages of compression);
 
5) hydrogen sulfide and carbon dioxide removal (acid gas removal);
 
6) secondary compression (1 or 2 stages);
 
7) drying of the cracked gas;
 
8) cryogenic treatment;
 
9) all of the cold cracked gas stream goes to the demethanizer tower. The overhead stream from the demethanizer tower consists of all the hydrogen and methane that was in the cracked gas stream. Different methods of cryogenically treating this overhead stream results in the separation of the hydrogen and the methane. This usually involves liquid methane at a temperature around -250 degrees F. Complete recovery of all the methane is critical to the economical operation of an ethylene plant.
 
10) the bottom stream from the demethanizer tower goes to the deethanizer tower. The overhead stream from the deethanizer tower consists of all the C<sub>2,</sub>'s that were in the cracked gas stream. The C<sub>2</sub>'s then go to a C<sub>2</sub> splitter. The product ethylene is taken from the overhead of the tower and the ethane coming from the bottom of the splitter is recycled to the furnaces to be cracked again;
 
11) the bottom stream from the deethanizer tower goes to the depropanizer tower. The overhead stream from the depropanizer tower consists of all the C<sub>3</sub>'s that were in the cracked gas stream. Prior to sending the C<sub>3</sub>'s to the C<sub>3</sub> splitter this stream is hydrogenated in order to react out the methylacetylene and propadiene. Then this stream is sent to the C<sub>3</sub> splitter. The overhead stream from the C<sub>3</sub> splitter is product propylene and the bottom stream from the C<sub>3</sub> splitter is propane which can be sent back to the furnaces for cracking or used as fuel.
 
12) The bottom stream from the depropanizer tower is fed to the debutanizer tower. The overhead stream from the debutanizer is all of the C<sub>4</sub>'s that was in the cracked gas stream. The bottom stream from the debutanizer consists of everything in the cracked gas stream that is C<sub>5</sub> or heavier. This could be called a light pyrolysis gasoline.<ref name=Keystone/>
 
 
 
Since the production of ethylene is energy intensive, much effort has been dedicated recovering heat from the gas leaving the furnaces.  Most of the energy recovered from the cracked gas is used to make high pressure (1200 psig) steam. This steam is in turn used to drive the turbines for compressing cracked gas, the propylene refrigeration compressor, and the ethylene refrigeration compressor. An ethylene plant, once running, does not need to import any steam to drive its' steam turbines. A typical world scale ethylene plant (about 1.5 billion pounds of ethylene per year) uses a 45,000 horsepower cracked gas compressor, a 30,000 horsepower propylene compressor, and a 15,000 horsepower ethylene compressor.
 
 
 
When starting an ethylene plant it is important to start the cooling systems in the proper order. The cooling systems consist of Cooling Tower Water (CTW); propylene refrigeration with four or five different levels or stages. Each level corresponds to a particular pressure and temperature; and three or four stages of ethylene regfrigeration.  The CTW must be started first because the propylene system needs it to condense propylene and the ethylene refrigeration systems needs it to desuperheat high pressure ethylene. The propylene system must start next because the ethylene system needs high pressure propylene for desuperheating the high pressure ethylene stage and the low pressure propylene stage for condensing the high pressure ethylene. While the ethylene plant is running, the plant can continue to run for a time if the ethylene refrigeration compressor shuts down. However, if the propylene compressor shuts down the whole plant must be shut down immediately.<ref name=Keystone/>
 
  
== Theoretical considerations ==   
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Given that the production of ethylene is energy intensive, much effort has been dedicated to recover heat from the gas leaving the furnaces. Most of the energy recovered from the cracked gas is used to make high pressure (1200 psig) steam. This steam is in turn used to drive the turbines for compressing cracked gas, the propylene refrigeration compressor, and the ethylene refrigeration compressor. An ethylene plant, once running, does not need to import any steam to drive its steam turbines. A typical world scale ethylene plant (about 1.5 billion pounds of ethylene per year) uses a 45,000 horsepower cracked gas compressor, a 30,000 horsepower propylene compressor, and a 15,000 horsepower ethylene compressor.
Although ethylene is a relatively simple molecule, its [[Spectroscopy|spectrum]]<ref name=NIST_Webbook>[http://webbook.nist.gov/cgi/cbook.cgi?ID=C74851&Units=SI&Mask=400#UV-Vis-Spec Ethylene:UV/Visible Spectrum]. NIST Webbook. Retrieved September 12, 2007.</ref> is considered to be one of the most difficult to explain adequately from both a theoretical and practical perspective. For this reason, it is often used as a test case in [[computational chemistry]]. Of particular note is the difficulty in characterizing the ultraviolet absorption of the molecule. Interest in the subtleties and details of the ethylene spectrum can be dated back to at least the 1950s.
 
  
 
==Chemical reactions==
 
==Chemical reactions==
 
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Ethylene is an extremely important building block in the petrochemical industry.<ref name=Keystone/> It can undergo many types of reactions that generate a plethora of chemical products. Some of its major reactions include: 1) [[Polymerization]], 2) [[Oxidation]], 3) [[Halogenation]] and [[Hydrohalogenation]], 4) [[Alkylation]], 5) [[Hydration]], 6) [[Oligomerization]], and 7) [[Hydroformylation|Oxo-reaction]].
Ethylene is an extremely important building block in the petrochemical industry. It can undergo many types of reactions which leads to a plethora of major chemical products. A list of some major types of reactions includes, 1) [[Polymerization]], 2) [[Oxidation]], 3) [[Halogenation]] and [[Hydrohalogenation]], 4) [[Alkylation]], 5) [[Hydration]], 6) [[Oligomerization]], 7) [[Hydroformylation|Oxo-reaction]], and 8) a ripening agent for fruits and vegetables (see Physiological responses of plants).<ref name=Keystone/>
 
  
 
===Additions to double bond===
 
===Additions to double bond===
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Like most alkenes, ethylene reacts with [[halogen]]s (general formula X<sub>2</sub>) to produce halogenated hydrocarbons (1,2-C<sub>2</sub>H<sub>4</sub>X<sub>2</sub>). It can also react with water to produce [[ethanol]], but the rate at which this happens is very slow unless a suitable [[catalyst]], such as [[phosphoric acid|phosphoric]] or [[sulfuric acid]], is used. Under high pressure, and in the presence of a catalytic metal ([[platinum]], [[rhodium]], [[nickel]]), [[hydrogen]] reacts with ethylene to form [[ethane]].
  
Like most alkenes, ethylene reacts with [[halogen]]s to produce  halogenated hydrocarbons1,2-C<sub>2</sub>H<sub>4</sub>X<sub>2</sub>.  It can also react with water to produce [[ethanol]], but the rate at which this happens is very slow unless a suitable [[catalyst]], such as [[phosphoric acid|phosphoric]] or [[sulfuric acid]], is used.  Under high pressure, and, in the presence of a catalytic metal ([[platinum]], [[rhodium]], [[nickel]]), [[hydrogen]] will react with ethylene to form [[ethane]].
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Ethylene is used primarily as an intermediate in the manufacture of other chemicals, known as [[monomer]]s, that are precursors of [[polymer]]s. For instance, ethylene can be [[chlorine|chlorinated]] to produce [[1,2-Dichloroethane|1,2-dichloroethane]] (ethylene dichloride). This can be converted to [[vinyl chloride]], the monomer precursor to the plastic known as [[polyvinyl chloride]]. Alternatively, it can be combined with [[benzene]] to produce [[ethylbenzene]], which is used in the manufacture of [[polystyrene]], another important plastic.
 
 
Ethylene is used primarily as an intermediate in the manufacture of other chemicals in the synthesis of [[monomers]]. Ethylene can be [[chlorine|chlorinated]] to produce [[1,2-Dichloroethane|1,2-dichloroethane]] (ethylene dichloride). This can be converted to [[vinyl chloride]], the monomer precursor to plastic [[polyvinyl chloride]], or combined with [[benzene]] to produce [[ethylbenzene]], which is used in the manufacture of [[polystyrene]], another important plastic.
 
 
 
Ethylene is more reactive than alkanes for two reasons:
 
 
 
1. It has a double bond, one called the π-bond(pi) and one called the σ-bond (sigma). Where π-bond is weak and σ-bond is strong. The presence of the π-bond makes it a high energy molecule. Thus bromine water decolorises readily when it is added to ethylene.       
 
 
 
2. High electron density at the double bond makes it react readily. It is broken in an [[addition reaction]] to produce many useful products.
 
  
 
====Polymerization====
 
====Polymerization====
 
{{main|Polyethylene}}
 
{{main|Polyethylene}}
Ethylene [[polymer]]izes to produce [[polyethylene]], also called ''polyethene'' or ''polythene'', the world's most widely-used plastic.
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Ethylene [[polymer]]izes to produce [[polyethylene]], also called ''polyethene'' or ''polythene,'' the world's most widely used plastic.
  
 
Major polyethylene product groups are low density polyethylene, high density polyethylene, polyethylene copolymers, as well as ethylene-propylene co- & terpolymers.<ref name=Keystone/>
 
Major polyethylene product groups are low density polyethylene, high density polyethylene, polyethylene copolymers, as well as ethylene-propylene co- & terpolymers.<ref name=Keystone/>
  
 
====Oxidation====
 
====Oxidation====
Ethylene is [[oxidation|oxidized]] to produce [[ethylene oxide]], which is [[hydrolysis|hydrolysed]] to [[ethylene glycol]]. It is also a precursor to [[vinyl acetate]].
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Ethylene is [[oxidation|oxidized]] to produce [[ethylene oxide]], which is [[hydrolysis|hydrolyzed]] to [[ethylene glycol]]. It is also a precursor to [[vinyl acetate]].
 
 
Ethylene undergoes oxidation by palladium to give [[acetaldehyde]].  This conversion was at one time a major industrial process.<ref>Elschenbroich, C.; A. Salzer. 2006. ''Organometallics : A Concise Introduction'' (2nd Ed). Weinheim, Germany: Wiley-VCH. ISBN 3-527-28165-7.</ref>  The process proceeds via the initial complexation of ethylene to a Pd(II) center.
 
  
Major intermediates of the [[oxidation]] of Ethylene are [[ethylene oxide]], [[acetaldehyde]], [[vinyl acetate]] and [[ethylene glycol]]. The list of products made from these intermediates is long. Some of them are: [[polyesters]], [[polyurethane]], [[morpholine]], [[ethanolamines]], [[aspirin]] and [[glycol ethers]].<ref name=Keystone/>
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Ethylene undergoes oxidation in the presence of palladium to give [[acetaldehyde]]. This conversion was at one time a major industrial process.<ref>C. Elschenbroich and A. Salzer, ''Organometallics: A Concise Introduction,'' 2nd ed. (Weinheim, Germany: Wiley-VCH, 2005, ISBN 3-527-28165-7).</ref> The process proceeds via the initial complexation of ethylene to a Pd(II) center.
  
====Halogenation and Hydrohalogenation====
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Major intermediates of the [[oxidation]] of ethylene are [[ethylene oxide]], [[acetaldehyde]], [[vinyl acetate]], and [[ethylene glycol]]. The list of products made from these intermediates is long. Some of them are: [[polyesters]], [[polyurethane]], [[morpholine]], [[ethanolamines]], [[aspirin]] and [[glycol ethers]].<ref name=Keystone/>
  
Major intermediates from the [[halogenation]] and [[hydrohalogenation]] of ethylene include: [[ethylene dichloride]], [[ethyl chloride]] and [[ethylene dibromide]]. Some products in this group are: [[polyvinyl chloride]], [[trichloroethylene]], [[perchloroethylene]], [[methyl chloroform]], [[polyvinylidiene chloride]] and [[copolymers]], and [[ethyl bromide]].<ref name=Keystone/>
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====Halogenation and hydrohalogenation====
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Major intermediates from the [[halogenation]] and [[hydrohalogenation]] of ethylene include: [[Ethylene dichloride]], [[ethyl chloride]], and [[ethylene dibromide]]. Some products in this group are: [[Polyvinyl chloride]], [[trichloroethylene]], [[perchloroethylene]], [[methyl chloroform]], [[polyvinylidiene chloride]] and [[copolymers]], and [[ethyl bromide]].<ref name=Keystone/>
  
 
====Alkylation====
 
====Alkylation====
Line 189: Line 167:
  
 
====Hydration====
 
====Hydration====
[[Ethanol]] is the primary intermediate of the [[hydration]] of ethylene. Important products from ethanol are: [[ethylamines]], [[yeast]], [[acetaldehyde]], and [[ethyl acetate]].<ref name=Keystone/>
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[[Ethanol]] is the primary intermediate of the [[hydration]] of ethylene. Important products from ethanol are: [[Ethylamines]], [[yeast]], [[acetaldehyde]], and [[ethyl acetate]].<ref name=Keystone/>
  
 
====Oligomerization====
 
====Oligomerization====
Line 195: Line 173:
  
 
====Oxo-reaction====
 
====Oxo-reaction====
The [[Hydroformylation|Oxo-reaction]] of ethylene results in [[propionaldehyde]] with its' primary products of [[propionic acid]] and [[n-propyl alcohol]].<ref name=Keystone/>
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The [[Hydroformylation|Oxo-reaction]] of ethylene results in [[propionaldehyde]] with its primary products of [[propionic acid]] and [[n-propyl alcohol]].<ref name=Keystone/>
  
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== Uses ==
 
===In the synthesis of fine chemicals===
 
===In the synthesis of fine chemicals===
Ethylene is useful in [[organic synthesis]].<ref>Crimmins, M.T.; A.S. Kim-Meade. 2004. "Ethylene" in Encyclopedia of Reagents for Organic Synthesis (Ed: L. Paquette). New York, NY: J. Wiley & Sons.</ref>  Representative reactions include [[Diels-Alder]] additions, [[ene reaction]], and arene alkylation.
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Ethylene is useful in [[organic synthesis]].<ref>M.T. Crimmins, A.S. Kim-Meade, "Ethylene" in ''Encyclopedia of Reagents for Organic Synthesis'' Ed: L. Paquette (New York, NY: J. Wiley & Sons, 2004).</ref>  Representative reactions include [[Diels-Alder]] additions, [[ene reaction]], and arene alkylation.
  
 
===Miscellaneous===
 
===Miscellaneous===
 
Ethylene was once used as a general [[anesthetic]] applicable via inhalation, but it has long since been replaced (see Effects Upon Humans, below).
 
Ethylene was once used as a general [[anesthetic]] applicable via inhalation, but it has long since been replaced (see Effects Upon Humans, below).
  
It has also been hypothesized that ethylene was the catalyst for utterances of the [[oracle]] at [[Delphi]] in ancient [[Greece]].<ref name=Roach>Roach, John. 2001. [http://news.nationalgeographic.com/news/2001/08/0814_delphioracle.html Delphic Oracle's Lips May Have Been Loosened by Gas Vapors]. National Geographic. Retrieved September 12, 2007.</ref>
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It has also been hypothesized that ethylene was the catalyst for utterances of the [[oracle]] at [[Delphi]] in ancient [[Greece]].<ref name=Roach>John Roach, [http://news.nationalgeographic.com/news/2001/08/0814_delphioracle.html Delphic Oracle's Lips May Have Been Loosened by Gas Vapors,] ''National Geographic.'' Retrieved September 12, 2007.</ref>
  
 
It is also found in many lip gloss products.
 
It is also found in many lip gloss products.
  
Production of Ethylene in mineral oil filled transformers is a key indicator of severe localized overheating (>750 degrees C.)<ref>[http://www.transformerworld.co.uk/dga.htm Transformerworld Tutorial No. 3]. Retrieved September 12, 2007.</ref>
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Production of Ethylene in mineral oil filled transformers is a key indicator of severe localized overheating (>750 degrees C).<ref>Transformer World, [http://www.transformerworld.co.uk/dga.htm Tutorial No. 3.] Retrieved September 12, 2007.</ref>
  
 
==Ethylene as a plant hormone==
 
==Ethylene as a plant hormone==
{{Cleanup-section|June 2007}}
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Ethylene acts physiologically as a [[plant hormone|hormone]] in [[plant]]s.<ref name=Chow_2006>Chow B., P. McCourt. 2006. Plant hormone receptors: perception is everything. ''Genes Dev''. 20:15:1998-2008.</ref><ref name="De Paepe_2005>De Paepe A. , D. Van der Straeten. 2005. Ethylene biosynthesis and signaling: an overview. ''Vitam Horm''. 72:399-430.</ref> It exists as a gas and acts at trace levels throughout the life of the plant by stimulating or regulating the [[ripening]] of [[fruit]], the opening of [[flower]]s, and the [[abscission]] (or shedding) of [[leaves]]. Its biosynthesis starts from [[methionine]] with [[1-aminocyclopropane-1-carboxylic acid]] (ACC) as a key intermediate.
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Ethylene acts as a [[plant hormone|hormone]] in [[plant]]s.<ref name=Chow_2006>B. Chow, P. McCourt, Plant hormone receptors: Perception is everything, ''Genes Dev'' 20: 15: 1998-2008.</ref><ref name="De Paepe_2005>A. De Paepe, D. Van der Straeten, Ethylene biosynthesis and signaling: An overview, ''Vitam Horm'' 72 (2005): 399-430.</ref> It exists as a gas and acts at trace levels throughout the life of the plant by stimulating or regulating the [[ripening]] of [[fruit]], the opening of [[flower]]s, and the [[abscission]] (or shedding) of [[leaves]].
  
 
It has been shown that ethylene is produced from essentially all parts of higher plants, including leaves, stems, roots, flowers, fruits, tubers, and seedlings. The ethylene produced by the fruit is especially harmful to plants to other fruits and vegetables. The fruit that is the main producer of ethylene gas is apples and the most sensitive flowers of ethylene gas are carnations. Never place a bowl of fruit next to a vase of flowers. Always separate your vegetables from your fruits. It is commercially used in the horticulture industry to hasten the ripening of bananas, or inducing flowering of bromeliads. However, in some cases it may be detrimental by reducing the shelf life of some products such as flowers, pot plants, or kiwi fruit.  
 
It has been shown that ethylene is produced from essentially all parts of higher plants, including leaves, stems, roots, flowers, fruits, tubers, and seedlings. The ethylene produced by the fruit is especially harmful to plants to other fruits and vegetables. The fruit that is the main producer of ethylene gas is apples and the most sensitive flowers of ethylene gas are carnations. Never place a bowl of fruit next to a vase of flowers. Always separate your vegetables from your fruits. It is commercially used in the horticulture industry to hasten the ripening of bananas, or inducing flowering of bromeliads. However, in some cases it may be detrimental by reducing the shelf life of some products such as flowers, pot plants, or kiwi fruit.  
  
"Ethylene has been used in practice since the ancient Egyptians, who would gas figs in order to stimulate ripening. The ancient Chinese would burn [[incense]] in closed rooms to enhance the ripening of pears. In 1864, it was discovered that gas leaks from street lights led to stunting of growth, twisting of plants, and abnormal thickening of stems (the triple response)[see [[plant senescence]]](Arteca, 1996; Salisbury and Ross, 1992). In 1901, a Russian scientist named Dimitry Neljubow showed that the active component was ethylene (Neljubow, 1901). Doubt discovered that ethylene stimulated [[abscission]] in 1917 (Doubt, 1917). It wasn't until 1934 that Gane reported that plants synthesize ethylene (Gane, 1934). In 1935, Crocker proposed that ethylene was the plant hormone responsible for fruit ripening as well as inhibition of vegetative tissues (Crocker, 1935).  
+
"Ethylene has been used in practice since the ancient Egyptians, who would gas figs in order to stimulate ripening. The ancient Chinese would burn [[incense]] in closed rooms to enhance the ripening of pears. In 1864, it was discovered that gas leaks from street lights led to stunting of growth, twisting of plants, and abnormal thickening of stems (the triple response) (Arteca, 1996; Salisbury and Ross, 1992). In 1901, a Russian scientist named Dimitry Neljubow showed that the active component was ethylene (Neljubow, 1901). Doubt discovered that ethylene stimulated [[abscission]] in 1917 (Doubt, 1917). It wasn't until 1934 that Gane reported that plants synthesize ethylene (Gane, 1934). In 1935, Crocker proposed that ethylene was the plant hormone responsible for fruit ripening as well as inhibition of vegetative tissues (Crocker, 1935).
  
 
Because ''[[Nicotiana benthamiana]]'' leaves are susceptible to injuries, they are used in plant physiology practicals to study ethylene secretion.
 
Because ''[[Nicotiana benthamiana]]'' leaves are susceptible to injuries, they are used in plant physiology practicals to study ethylene secretion.
  
 
===Ethylene biosynthesis in plants===
 
===Ethylene biosynthesis in plants===
All plant tissues are able to produce ethylene, although the production rate is normally low. <blockquote> "Ethylene production is regulated by a variety of developmental and environmental factors. During the life of the plant, ethylene production is induced during certain stages of growth such as germination, ripening of fruits, abscission of leaves, and senescence of flowers. Ethylene production can also be induced by a variety of external aspects such as mechanical wounding, environmental stresses, and certain chemicals including auxin and other regulators"<ref name=Yang_1984>Yang, S.F., and N.E. Hoffman P. 1984. Ethylene biosynthesis and its regulation in higher plants. ''Ann. Rev. Plant Physiol.'' 35:155-89.</ref> </blockquote>  
+
All plant tissues are able to produce ethylene, although the production rate is normally low. <blockquote>Ethylene production is regulated by a variety of developmental and environmental factors. During the life of the plant, ethylene production is induced during certain stages of growth such as germination, ripening of fruits, abscission of leaves, and senescence of flowers. Ethylene production can also be induced by a variety of external aspects such as mechanical wounding, environmental stresses, and certain chemicals including auxin and other regulators.<ref name=Yang_1984>S.F. Yang and N.E. Hoffman, Ethylene biosynthesis and its regulation in higher plants, ''Ann. Rev. Plant Physiol'' 35: 155-89.</ref> </blockquote>  
  
 
The biosynsthesis of the hormone starts with conversion of the aminoacid methionine to S-adenosyl-L- methionine (SAM, also called Adomet) by the enzyme Met Adenosyltransferase. SAM is then converted to  1-aminocyclopropane-1-carboxylic-acid (ACC) by the enzyme ACC synthase (ACS); the activity of ACS is the rate-limiting step in ethylene production, therefore regulation of this enzyme is key for the ethylene biosynthesis. The final step requires oxygen and involves the action of the enzyme ACC-oxidase (ACO), formerly known as the Ethylene Forming Enzyme (EFE).
 
The biosynsthesis of the hormone starts with conversion of the aminoacid methionine to S-adenosyl-L- methionine (SAM, also called Adomet) by the enzyme Met Adenosyltransferase. SAM is then converted to  1-aminocyclopropane-1-carboxylic-acid (ACC) by the enzyme ACC synthase (ACS); the activity of ACS is the rate-limiting step in ethylene production, therefore regulation of this enzyme is key for the ethylene biosynthesis. The final step requires oxygen and involves the action of the enzyme ACC-oxidase (ACO), formerly known as the Ethylene Forming Enzyme (EFE).
Line 231: Line 210:
  
 
===Environmental and biological triggers of ethylene===
 
===Environmental and biological triggers of ethylene===
 +
Environmental cues can induce the biosynthesis of the plant hormone. Flooding, drought, chilling, wounding, and pathogen attack can induce ethylene formation in plants.
  
Environmental cues can induce the biosynthesis of the plant hormone. Flooding, drought, chilling, wounding, and pathogen attack can induce the ethylene formation in the plant.  
+
In flooding, plant roots suffer from [[anoxia]], leading to the synthesis of the [[1-Aminocyclopropane-1-carboxylic acid]] (ACC). As it lacks of oxygen, ACC is transported upwards in the plant and then oxidized in leaves. The product, the ethylene causes the [[epinasty]] of the leaves.
  
In flooding, root suffers from [[anoxia]], leading to the synthesis of the  [[1-Aminocyclopropane-1-carboxylic acid]] (ACC). As it lacks of oxygen, ACC is transported upwards in the plant and then oxidized in leaves. The product, the ethylene causes the [[epinasty]] of the leaves.
+
One speculation recently put forth for epinasty<ref>Plant Hormones, [http://www.planthormones.info/epinasty.htm Epinasty.] Retrieved September 12, 2007.</ref> is the downward pointing leaves may act as pump handles in the wind. The ethylene may or may not additionally induce the growth of a valve in the [[xylem]], but the idea is that the plant would harness the power of the wind to pump out more water from the roots of the plants than would normally happen with [[transpiration]].
 
 
One speculation recently put forth for epinasty<ref>[http://www.planthormones.info/epinasty.htm Epinasty.] Retrieved September 12, 2007.</ref> is the downward pointing leaves may act as pump handles in the wind. The ethylene may or may not additionally induce the growth of a valve in the [[xylem]], but the idea is that the plant would harness the power of the wind to pump out more water from the roots of the plants than would normally happen with [[transpiration]].
 
  
 
===Physiological responses of plants===
 
===Physiological responses of plants===
Like the other plant hormones, ethylene is considered to have [[pleiotropic]] effects. This essentially means that it is thought that at least some of the effects of the hormone are unrelated. What is actually caused by the gas may depend on the tissue affected as well as environmental conditions. In the evolution of plants, ethylene would simply be a message that was coopted for unrelated uses by plants during different periods of the evolutionary development.
+
Like the other plant hormones, ethylene is considered to have [[pleiotropic]] effects. This essentially means that it is thought that at least some of the effects of the hormone are unrelated. What is actually caused by the gas may depend on the tissue affected as well as environmental conditions.
 
 
====Some Plant Ethylene Characteristics====
 
  
 +
====Some plant ethylene characteristics====
 
* Rapidly [[diffusion|diffuses]] because it is a gas
 
* Rapidly [[diffusion|diffuses]] because it is a gas
 
* Synthesized in nodes of [[Plant stem|stems]]  
 
* Synthesized in nodes of [[Plant stem|stems]]  
Line 251: Line 228:
 
* In [[pollination]], when the pollen reaches the [[stigma]], the precursor of the ethylene, ACC, is secreted to the petal, the ACC releases ethylene with ACC oxidase.
 
* In [[pollination]], when the pollen reaches the [[stigma]], the precursor of the ethylene, ACC, is secreted to the petal, the ACC releases ethylene with ACC oxidase.
  
====List of Plant Responses to Ethylene====
+
====List of plant responses to ethylene====
 
 
 
* Stimulates leaf and flower [[senescence]]  
 
* Stimulates leaf and flower [[senescence]]  
 
* Stimulates senescence of mature [[xylem]] cells in preparation for plant use
 
* Stimulates senescence of mature [[xylem]] cells in preparation for plant use
Line 258: Line 234:
 
* Induces [[leaf abscission]]
 
* Induces [[leaf abscission]]
 
* Induces seed [[germination]]  
 
* Induces seed [[germination]]  
* Induces [[root hair]] growth &ndash; increasing the efficiency of water and mineral absorption  
+
* Induces [[root hair]] growth—increasing the efficiency of water and mineral absorption  
 
* Induces the growth of [[adventitious root]]s during flooding  
 
* Induces the growth of [[adventitious root]]s during flooding  
* Stimulates [[epinasty]] &ndash; leaf [[Petiole (botany)|petiole]] grows out, leaf hangs down and curls into itself  
+
* Stimulates [[epinasty]]—leaf [[Petiole (botany)|petiole]] grows out, leaf hangs down and curls into itself  
 
* Stimulates [[fruit ripening]]  
 
* Stimulates [[fruit ripening]]  
 
* Induces a [[climacteric]] rise in respiration in some fruit which causes a release of additional ethylene. This can be the one bad apple in a barrel spoiling the rest phenomenon.
 
* Induces a [[climacteric]] rise in respiration in some fruit which causes a release of additional ethylene. This can be the one bad apple in a barrel spoiling the rest phenomenon.
 
* Affects neighboring individuals  
 
* Affects neighboring individuals  
 
* Disease/wounding resistance  
 
* Disease/wounding resistance  
* [[Triple response]] when applied to seedlings &ndash; stem elongation slows, the stem thickens, and curvature causes the stem to start growing horizontally. This strategy is thought to allow a seedling grow around an obstacle
+
* [[Triple response]] when applied to seedlings—stem elongation slows, the stem thickens, and curvature causes the stem to start growing horizontally. This strategy is thought to allow a seedling grow around an obstacle
 
* Inhibits stem growth outside of seedling stage
 
* Inhibits stem growth outside of seedling stage
 
* Stimulates stem and cell broadening and lateral branch growth also outside of seedling stage
 
* Stimulates stem and cell broadening and lateral branch growth also outside of seedling stage
Line 274: Line 250:
  
 
==Effects on humans==
 
==Effects on humans==
 +
Ethylene is colorless, has a pleasant sweet faint odor, and has a slightly sweet taste, and as it enhances fruit ripening, assists in the development of odor-active aroma volatiles (especially [[ester]]s), which are responsible for the specific smell of each kind of flower or fruit. In high concentrations it can cause nausea. Its use in the food industry to induce ripening of fruit and vegetables, can lead to accumulation in refrigerator crispers, accelerating spoilage of these foods when compared with naturally ripened products.
  
Ethylene is colorless, has a pleasant sweet faint odor, and has a slightly sweet taste, and as it enhances fruit ripening, assists in the development of odour-active aroma volatiles (especially [[ester]]s), which are responsible for the specific smell of each kind of flower or fruit.  In high concentrations it can cause nausea.  Its use in the food industry to induce ripening of fruit and vegetables, can lead to accumulation in refrigerator crispers, accelerating spoilage of these foods when compared with naturally ripened products.
+
Ethylene has long been in use as an inhalatory anaesthetic. It shows little or no carcinogenic or mutagenic properties, and although there may be moderate hyperglycemia, post operative nausea, whilst higher than nitrous oxide is less than in the use of cyclopropane. During the induction and early phases, blood pressure may rise a little, but this effect may be due to patient anxiety, as blood pressure quickly returns to normal. Cardiac arrhythmias are infrequent and cardio-vascular effects are benign. Exposure at 37.5 percent for 15 minutes may result in marked memory disturbances. Humans exposed to as much as 50 percent ethylene in [[air]], whereby the oxygen availability is decreased to 10 percent, experience a complete loss of consciousness and may subsequently die. Effects of exposure seem related to the issue of oxygen deprivation.
 
 
Ethylene has long been in use as an inhalatory anaesthetic. It shows little or no carcinogenic or mutagenic properties, and although there may be moderate hyperglycemia, post operative nausea, whilst higher than nitrous oxide is less than in the use of cyclopropane. During the induction and early phases, blood pressure may rise a little, but this effect may be due to patient anxiety, as blood pressure quickly returns to normal. Cardiac arrythmias are infrequent and cardio-vascular effects are benign. Exposure at 37.5% for 15 minutes may result in marked memory disturbances. Humans exposed to as much as 50% ethylene in [[air]], whereby the oxygen availability is decreased to 10%, experience a complete loss of consciousness and may subsequently die. Effects of exposure seem related to the issue of oxygen deprivation.  
 
  
In mild doses, ethylene produces states of euphoria, associated with stimulus to the pleasure centres of the human brain. It has been hypothesised that human liking for the odours of flowers is due in part to a mild action of ethylene associated with the plant. Many geologists and scholars believe that the famous Greek Oracle at [[Delphi]] (the [[Pythia]]) went into her trance-like state as an affect of  ethylene rising from ground faults.<ref name=Roach/>   
+
In mild doses, ethylene produces states of euphoria, associated with stimulus to the pleasure centres of the human brain. It has been hypothesized that human liking for the odors of flowers is due in part to a mild action of ethylene associated with the plant. Many geologists and scholars believe that the famous Greek Oracle at [[Delphi]] (the [[Pythia]]) went into her trance-like state as an affect of  ethylene rising from ground faults.<ref name=Roach/>   
  
In air, ethylene acts primarily as an asphyxiant. Concentrations of ethylene required to produce any marked physiological effect will reduce the oxygen content to such a low level that life cannot be supported. For example, air containing 50% of ethylene will contain only about 10% oxygen.
+
In air, ethylene acts primarily as an asphyxiant. Concentrations of ethylene required to produce any marked physiological effect will reduce the oxygen content to such a low level that life cannot be supported. For example, air containing 50 percent of ethylene will contain only about 10 percent oxygen.
  
Loss of consciousness results when the air contains about 11% of oxygen. Death occurs quickly when the oxygen content falls to 8% or less. There is no evidence to indicate that prolonged exposure to low concentrations of ethylene can result in chronic effects. Prolonged exposure to high concentrations may cause permanent effects because of oxygen deprivation.
+
Loss of consciousness results when the air contains about 11 percent of oxygen. Death occurs quickly when the oxygen content falls to 8 percent or less. There is no evidence to indicate that prolonged exposure to low concentrations of ethylene can result in chronic effects. Prolonged exposure to high concentrations may cause permanent effects because of oxygen deprivation.
  
Ethylene has a very low order of systemic toxicity. When used as a surgical anesthetic, it is always administered with oxygen with an increased risk of fire. In such cases, however, it acts as a simple, rapid anesthetic having a quick recovery. Prolonged inhalation of about 85% in oxygen is slightly toxic, resulting in a slow fall in the blood pressure; at about 94% in oxygen, ethylene is acutely fatal.
+
Ethylene has a very low order of systemic toxicity. When used as a surgical anesthetic, it is always administered with oxygen with an increased risk of fire. In such cases, however, it acts as a simple, rapid anesthetic having a quick recovery. Prolonged inhalation of about 85 percent in oxygen is slightly toxic, resulting in a slow drop in blood pressure; at about 94 percent in oxygen, ethylene is acutely fatal.
  
 
==See also==
 
==See also==
 
+
* [[Alkane]]
 
* [[Alkene]]
 
* [[Alkene]]
 
* [[Organic chemistry]]
 
* [[Organic chemistry]]
 
+
* [[Polyethylene]]
{{Alkenes}}
 
{{Functional Groups}}
 
{{BranchesofChemistry}}
 
{{Plant_hormones}}
 
  
 
== Notes ==
 
== Notes ==
Line 301: Line 272:
  
 
== References ==
 
== References ==
 +
* Kniel, Ludwig, Olaf Winter, and Karl Stork. ''Ethylene, Keystone to the Petrochemical Industry''. Chemical Industries, 2. New York: CRC Press, 1980. ISBN 0824769147.
 +
* McMurry, John. ''Organic Chemistry,'' 6th ed. Belmont, CA: Brooks/Cole, 2004. ISBN 0534420052.
 +
* Morrison, Robert T., and Robert N. Boyd. ''Organic Chemistry,'' 6th ed. Englewood Cliffs, NJ: Prentice Hall, 1992. ISBN 0-13-643669-2.
 +
* Solomons, T.W. Graham, and Fryhle, Craig B. ''Organic Chemistry,'' 8th ed. Hoboken, NJ: John Wiley, 2004. ISBN 0471417998.
  
* McMurry, John. 2004. ''Organic Chemistry''. 6th ed. Belmont, CA: Brooks/Cole. ISBN 0534420052.
+
==External links==
 +
All links retrieved March 22, 2024.
  
* Morrison, Robert T., and Robert N. Boyd. 1992. ''Organic Chemistry''. 6th ed. Englewood Cliffs, NJ: Prentice Hall. ISBN 0-13-643669-2.
+
*[http://www.planthormones.info A Sketch of an 8 Part Plant Hormone Theory].
  
* Solomons, T.W. Graham, and Fryhle, Craig B. 2004. ''Organic Chemistry''. 8th ed. Hoboken, NJ: John Wiley. ISBN 0471417998.
+
----
 
+
{{Alkenes}}
==External links==
+
{{Functional Groups}}
 
+
{{BranchesofChemistry}}
*[http://www.ilo.org/public/english/protection/safework/cis/products/icsc/dtasht/_icsc04/icsc0475.htm International Chemical Safety Card 0475]. Retrieved September 12, 2007.
+
{{Plant_hormones}}
*[http://ecb.jrc.it/ European Chemicals Bureau]. Retrieved September 12, 2007.
 
*[http://www.planthormones.info Speculations Towards a General Plant Hormone Theory]. Retrieved September 12, 2007.
 
  
 
[[Category:Physical sciences]]
 
[[Category:Physical sciences]]

Latest revision as of 04:36, 22 March 2024

Ethylene
EthyleneEthylene
General
Systematic name Ethene
Molecular formula C2H4
SMILES C=C
Molar mass 28.05 g/mol
Appearance colourless gas
CAS number [74-85-1]
Properties
Density and phase 1.178 g/l at 15 °C, gas
Solubility of gas in water 25 mL/100 mL (0 °C)
12 mL/100 mL (25 °C)[1]
Melting point −169.1 °C
Boiling point −103.7 °C
Structure
Molecular shape planar
Dipole moment zero
Symmetry group D2h
Thermodynamic data
Std enthalpy of
formation
ΔfH°gas
+52.47 kJ/mol
Standard molar
entropy
S°gas
219.32 J·K−1·mol−1
Hazards
MSDS External MSDS
EU classification Extremely flammable (F+)
NFPA 704

NFPA 704.svg

4
1
2
 
R-phrases R12, R67
S-phrases S2, S9, S16,
S33, S46
Flash point Flammable gas
Explosive limits 2.7–36.0%
Autoignition temperature 490 °C
Supplementary data page
Structure and
properties
n, εr, etc.
Thermodynamic
data
Phase behaviour
Solid, liquid, gas
Spectral data UV, IR, NMR, MS
Related compounds
Other alkenes Propene
Butene
Related compounds Ethane
Acetylene
Except where noted otherwise, data are given for
materials in their standard state (at 25 °C, 100 kPa)
Infobox disclaimer and references

Ethylene (or IUPAC name ethene) is a chemical compound with the formula C2H4. Each molecule contains a double bond between the two carbon atoms, and for this reason it is classified as an alkene, olefin, or unsaturated hydrocarbon. At ordinary temperatures and pressures, it is a colorless gas.

Ethylene acts as a hormone in plants, regulating the ripening of fruit, opening of flowers, and shedding of leaves.[2] It is also extremely important in industry and is the most abundantly produced organic compound in the world. Global production of ethylene exceeded 75 million metric tons per year in 2005.[3] It can undergo many types of chemical reactions to generate a wide variety of chemical products.

History

Ethylene was first synthesized in 1795 by a collaboration of four Dutch chemists. From then on, it was referred to as the olefiant gas (oil-making gas), because it combined with chlorine to produce the "oil of the Dutch chemists" (1,2-dichloroethane).

In the mid-nineteenth century, ethylene (C2H4) was thought of as the "daughter" of the functional group ethyl (C2H5). Around that time, the suffix -ene (an Ancient Greek root added to the end of female names meaning "daughter of") was widely used to refer to a molecule (or molecular component) that contained one less hydrogen atom than the molecule being modified. Thus, by adding this suffix to "ethyl," the name "ethylene" was derived.

In 1866, German chemist August Wilhelm von Hofmann proposed a system of hydrocarbon nomenclature in which the suffixes -ane, -ene, -ine, -one, and -une were used to denote hydrocarbons with 0, 2, 4, 6, and 8 fewer hydrogen atoms (per molecule) than their parent alkane.[4] In this system, ethylene became ethene. Hofmann's system eventually became the basis for the Geneva nomenclature approved by the International Congress of Chemists in 1892, which remains at the core of the IUPAC nomenclature. By then, however, the name ethylene was deeply entrenched, and it remains in wide use today, especially in the chemical industry.

The 1979 IUPAC nomenclature rules made an exception for retaining the non-systematic name ethylene,[5] but this decision was reversed in the 1993 rules.[6]

Structure

Each molecule of ethylene contains a pair of carbon atoms that are connected to each other by a double bond, one of which is called a π-bond (pi bond) and the other is called a σ-bond (sigma bond). In addition, two hydrogen atoms are bound to each carbon atom. All six atoms in an ethylene molecule are coplanar. The H-C-H angle is 117°. The molecule is also relatively rigid: rotation about the C-C bond is a high energy process that requires breaking the π-bond, while retaining the σ-bond between the carbon atoms.

Reactivity based on structure

The double bond in ethylene is a region of high electron density, and most reactions of ethylene occur at this double bond position. In particular, the π-bond (which is weaker than the σ-bond) is broken in addition reactions to produce many useful products. By comparison, alkanes, which contain only σ-bonds, are less reactive than ethylene.

Interpretation of its spectrum

Although ethylene is a relatively simple molecule, its spectrum[7] is considered one of the most difficult to explain adequately from both a theoretical and practical perspective. For this reason, it is often used as a test case in computational chemistry. Of particular note is the difficulty in characterizing the ultraviolet absorption of the molecule. Interest in the subtleties and details of the ethylene spectrum can be dated back to at least the 1950s.

Production

In the petrochemical industry, ethylene is produced by a process known as steam cracking. In this process, gaseous or light liquid hydrocarbons are briefly heated to 750–950 °C, inducing numerous free radical reactions. This process converts large hydrocarbons into smaller ones and introduces unsaturation (that is, double bonds). Ethylene is separated from the resulting complex mixture by repeated compression and distillation. In a related process used in oil refineries, high molecular weight hydrocarbons are cracked over Zeolite catalysts.

Heavier feedstocks, such as naphtha and gas oils, require at least two "quench towers" downstream of the cracking furnaces to recirculate pyrolysis-derived gasoline and process water. When cracking a mixture of ethane and propane, only one water quench tower is required.[8]

Given that the production of ethylene is energy intensive, much effort has been dedicated to recover heat from the gas leaving the furnaces. Most of the energy recovered from the cracked gas is used to make high pressure (1200 psig) steam. This steam is in turn used to drive the turbines for compressing cracked gas, the propylene refrigeration compressor, and the ethylene refrigeration compressor. An ethylene plant, once running, does not need to import any steam to drive its steam turbines. A typical world scale ethylene plant (about 1.5 billion pounds of ethylene per year) uses a 45,000 horsepower cracked gas compressor, a 30,000 horsepower propylene compressor, and a 15,000 horsepower ethylene compressor.

Chemical reactions

Ethylene is an extremely important building block in the petrochemical industry.[8] It can undergo many types of reactions that generate a plethora of chemical products. Some of its major reactions include: 1) Polymerization, 2) Oxidation, 3) Halogenation and Hydrohalogenation, 4) Alkylation, 5) Hydration, 6) Oligomerization, and 7) Oxo-reaction.

Additions to double bond

Like most alkenes, ethylene reacts with halogens (general formula X2) to produce halogenated hydrocarbons (1,2-C2H4X2). It can also react with water to produce ethanol, but the rate at which this happens is very slow unless a suitable catalyst, such as phosphoric or sulfuric acid, is used. Under high pressure, and in the presence of a catalytic metal (platinum, rhodium, nickel), hydrogen reacts with ethylene to form ethane.

Ethylene is used primarily as an intermediate in the manufacture of other chemicals, known as monomers, that are precursors of polymers. For instance, ethylene can be chlorinated to produce 1,2-dichloroethane (ethylene dichloride). This can be converted to vinyl chloride, the monomer precursor to the plastic known as polyvinyl chloride. Alternatively, it can be combined with benzene to produce ethylbenzene, which is used in the manufacture of polystyrene, another important plastic.

Polymerization

Main article: Polyethylene

Ethylene polymerizes to produce polyethylene, also called polyethene or polythene, the world's most widely used plastic.

Major polyethylene product groups are low density polyethylene, high density polyethylene, polyethylene copolymers, as well as ethylene-propylene co- & terpolymers.[8]

Oxidation

Ethylene is oxidized to produce ethylene oxide, which is hydrolyzed to ethylene glycol. It is also a precursor to vinyl acetate.

Ethylene undergoes oxidation in the presence of palladium to give acetaldehyde. This conversion was at one time a major industrial process.[9] The process proceeds via the initial complexation of ethylene to a Pd(II) center.

Major intermediates of the oxidation of ethylene are ethylene oxide, acetaldehyde, vinyl acetate, and ethylene glycol. The list of products made from these intermediates is long. Some of them are: polyesters, polyurethane, morpholine, ethanolamines, aspirin and glycol ethers.[8]

Halogenation and hydrohalogenation

Major intermediates from the halogenation and hydrohalogenation of ethylene include: Ethylene dichloride, ethyl chloride, and ethylene dibromide. Some products in this group are: Polyvinyl chloride, trichloroethylene, perchloroethylene, methyl chloroform, polyvinylidiene chloride and copolymers, and ethyl bromide.[8]

Alkylation

Major chemical intermediates from the alkylation of ethylene include: ethylbenzene, ethyl toluene, ethyl anilines, 1,4-hexadiene and aluminum alkyls. Products of these intermediates include polystyrene, unsaturated polyesters and ethylene-propylene terpolymers.[8]

Hydration

Ethanol is the primary intermediate of the hydration of ethylene. Important products from ethanol are: Ethylamines, yeast, acetaldehyde, and ethyl acetate.[8]

Oligomerization

The primary products of the Oligomerization of ethylene are alpha-olefins and linear primary alcohols. These are used as plasticizers and surfactants.[8]

Oxo-reaction

The Oxo-reaction of ethylene results in propionaldehyde with its primary products of propionic acid and n-propyl alcohol.[8]

Uses

In the synthesis of fine chemicals

Ethylene is useful in organic synthesis.[10] Representative reactions include Diels-Alder additions, ene reaction, and arene alkylation.

Miscellaneous

Ethylene was once used as a general anesthetic applicable via inhalation, but it has long since been replaced (see Effects Upon Humans, below).

It has also been hypothesized that ethylene was the catalyst for utterances of the oracle at Delphi in ancient Greece.[11]

It is also found in many lip gloss products.

Production of Ethylene in mineral oil filled transformers is a key indicator of severe localized overheating (>750 degrees C).[12]

Ethylene as a plant hormone

Ethylene acts as a hormone in plants.[13][14] It exists as a gas and acts at trace levels throughout the life of the plant by stimulating or regulating the ripening of fruit, the opening of flowers, and the abscission (or shedding) of leaves.

It has been shown that ethylene is produced from essentially all parts of higher plants, including leaves, stems, roots, flowers, fruits, tubers, and seedlings. The ethylene produced by the fruit is especially harmful to plants to other fruits and vegetables. The fruit that is the main producer of ethylene gas is apples and the most sensitive flowers of ethylene gas are carnations. Never place a bowl of fruit next to a vase of flowers. Always separate your vegetables from your fruits. It is commercially used in the horticulture industry to hasten the ripening of bananas, or inducing flowering of bromeliads. However, in some cases it may be detrimental by reducing the shelf life of some products such as flowers, pot plants, or kiwi fruit.

"Ethylene has been used in practice since the ancient Egyptians, who would gas figs in order to stimulate ripening. The ancient Chinese would burn incense in closed rooms to enhance the ripening of pears. In 1864, it was discovered that gas leaks from street lights led to stunting of growth, twisting of plants, and abnormal thickening of stems (the triple response) (Arteca, 1996; Salisbury and Ross, 1992). In 1901, a Russian scientist named Dimitry Neljubow showed that the active component was ethylene (Neljubow, 1901). Doubt discovered that ethylene stimulated abscission in 1917 (Doubt, 1917). It wasn't until 1934 that Gane reported that plants synthesize ethylene (Gane, 1934). In 1935, Crocker proposed that ethylene was the plant hormone responsible for fruit ripening as well as inhibition of vegetative tissues (Crocker, 1935).

Because Nicotiana benthamiana leaves are susceptible to injuries, they are used in plant physiology practicals to study ethylene secretion.

Ethylene biosynthesis in plants

All plant tissues are able to produce ethylene, although the production rate is normally low.

Ethylene production is regulated by a variety of developmental and environmental factors. During the life of the plant, ethylene production is induced during certain stages of growth such as germination, ripening of fruits, abscission of leaves, and senescence of flowers. Ethylene production can also be induced by a variety of external aspects such as mechanical wounding, environmental stresses, and certain chemicals including auxin and other regulators.[15]

The biosynsthesis of the hormone starts with conversion of the aminoacid methionine to S-adenosyl-L- methionine (SAM, also called Adomet) by the enzyme Met Adenosyltransferase. SAM is then converted to 1-aminocyclopropane-1-carboxylic-acid (ACC) by the enzyme ACC synthase (ACS); the activity of ACS is the rate-limiting step in ethylene production, therefore regulation of this enzyme is key for the ethylene biosynthesis. The final step requires oxygen and involves the action of the enzyme ACC-oxidase (ACO), formerly known as the Ethylene Forming Enzyme (EFE).

The pathway can be represented as follows:

                      Methionine —> SAM —> ACC —> Ethylene

Ethylene biosynthesis can be induced by endogenous or exogenous ethylene. ACC synthesis increases with high levels of auxins, specially Indol Acetic Acid (IAA), and cytokinins. ACC synthase is inhibited by abscisic acid.

Environmental and biological triggers of ethylene

Environmental cues can induce the biosynthesis of the plant hormone. Flooding, drought, chilling, wounding, and pathogen attack can induce ethylene formation in plants.

In flooding, plant roots suffer from anoxia, leading to the synthesis of the 1-Aminocyclopropane-1-carboxylic acid (ACC). As it lacks of oxygen, ACC is transported upwards in the plant and then oxidized in leaves. The product, the ethylene causes the epinasty of the leaves.

One speculation recently put forth for epinasty[16] is the downward pointing leaves may act as pump handles in the wind. The ethylene may or may not additionally induce the growth of a valve in the xylem, but the idea is that the plant would harness the power of the wind to pump out more water from the roots of the plants than would normally happen with transpiration.

Physiological responses of plants

Like the other plant hormones, ethylene is considered to have pleiotropic effects. This essentially means that it is thought that at least some of the effects of the hormone are unrelated. What is actually caused by the gas may depend on the tissue affected as well as environmental conditions.

Some plant ethylene characteristics

  • Rapidly diffuses because it is a gas
  • Synthesized in nodes of stems
  • Synthesized during germination
  • Synthesis is stimulated by auxin and maybe cytokinin as well
  • Ethylene levels are decreased by light
  • The flooding of roots stimulates the production of ACC which travels through the xylem to the stem and leaves where it is converted to the gas
  • In pollination, when the pollen reaches the stigma, the precursor of the ethylene, ACC, is secreted to the petal, the ACC releases ethylene with ACC oxidase.

List of plant responses to ethylene

  • Stimulates leaf and flower senescence
  • Stimulates senescence of mature xylem cells in preparation for plant use
  • Inhibits shoot growth except in some habitually flooded plants like rice
  • Induces leaf abscission
  • Induces seed germination
  • Induces root hair growth—increasing the efficiency of water and mineral absorption
  • Induces the growth of adventitious roots during flooding
  • Stimulates epinasty—leaf petiole grows out, leaf hangs down and curls into itself
  • Stimulates fruit ripening
  • Induces a climacteric rise in respiration in some fruit which causes a release of additional ethylene. This can be the one bad apple in a barrel spoiling the rest phenomenon.
  • Affects neighboring individuals
  • Disease/wounding resistance
  • Triple response when applied to seedlings—stem elongation slows, the stem thickens, and curvature causes the stem to start growing horizontally. This strategy is thought to allow a seedling grow around an obstacle
  • Inhibits stem growth outside of seedling stage
  • Stimulates stem and cell broadening and lateral branch growth also outside of seedling stage
  • Interference with auxin transport (with high auxin concentrations)
  • Inhibits stomatal closing except in some water plants or habitually flooded ones such as some rice varieties, where the opposite occurs (conserving CO2 and O2)
  • Where ethylene induces stomatal closing, it also induces stem elongation
  • Induces flowering in pineapples

Effects on humans

Ethylene is colorless, has a pleasant sweet faint odor, and has a slightly sweet taste, and as it enhances fruit ripening, assists in the development of odor-active aroma volatiles (especially esters), which are responsible for the specific smell of each kind of flower or fruit. In high concentrations it can cause nausea. Its use in the food industry to induce ripening of fruit and vegetables, can lead to accumulation in refrigerator crispers, accelerating spoilage of these foods when compared with naturally ripened products.

Ethylene has long been in use as an inhalatory anaesthetic. It shows little or no carcinogenic or mutagenic properties, and although there may be moderate hyperglycemia, post operative nausea, whilst higher than nitrous oxide is less than in the use of cyclopropane. During the induction and early phases, blood pressure may rise a little, but this effect may be due to patient anxiety, as blood pressure quickly returns to normal. Cardiac arrhythmias are infrequent and cardio-vascular effects are benign. Exposure at 37.5 percent for 15 minutes may result in marked memory disturbances. Humans exposed to as much as 50 percent ethylene in air, whereby the oxygen availability is decreased to 10 percent, experience a complete loss of consciousness and may subsequently die. Effects of exposure seem related to the issue of oxygen deprivation.

In mild doses, ethylene produces states of euphoria, associated with stimulus to the pleasure centres of the human brain. It has been hypothesized that human liking for the odors of flowers is due in part to a mild action of ethylene associated with the plant. Many geologists and scholars believe that the famous Greek Oracle at Delphi (the Pythia) went into her trance-like state as an affect of ethylene rising from ground faults.[11]

In air, ethylene acts primarily as an asphyxiant. Concentrations of ethylene required to produce any marked physiological effect will reduce the oxygen content to such a low level that life cannot be supported. For example, air containing 50 percent of ethylene will contain only about 10 percent oxygen.

Loss of consciousness results when the air contains about 11 percent of oxygen. Death occurs quickly when the oxygen content falls to 8 percent or less. There is no evidence to indicate that prolonged exposure to low concentrations of ethylene can result in chronic effects. Prolonged exposure to high concentrations may cause permanent effects because of oxygen deprivation.

Ethylene has a very low order of systemic toxicity. When used as a surgical anesthetic, it is always administered with oxygen with an increased risk of fire. In such cases, however, it acts as a simple, rapid anesthetic having a quick recovery. Prolonged inhalation of about 85 percent in oxygen is slightly toxic, resulting in a slow drop in blood pressure; at about 94 percent in oxygen, ethylene is acutely fatal.

See also

Notes

  1. Merck. 2001. The Merck Index. 13th Edition. Whitehouse Station, NJ: Merck & Co. ISBN 0-911910-13-1
  2. K. Wang, H. Li, and J. Ecker, Ethylene biosynthesis and signaling networks, Plant Cell 14 Suppl: S131-51.
  3. Production: Growth is the Norm, Chemical and Engineering News 59.
  4. A.W. Hofmann, Hofmann's Proposal for Systematic Nomenclature of the Hydrocarbons: "On the Action of Trichloride of Phosphorus on the Salts of the Aromatic Monamines." Retrieved September 12, 2007.
  5. ACD Labs, IUPAC nomenclature rule A-3.1 (1979). Retrieved September 12, 2007.
  6. ACD Labs, Footnote to IUPAC nomenclature rule R-9.1, table 19(b). Retrieved September 12, 2007.
  7. NIST Webbook, Ethylene:UV/Visible Spectrum, NIST Webbook. Retrieved September 12, 2007.
  8. 8.0 8.1 8.2 8.3 8.4 8.5 8.6 8.7 8.8 Ludwig Kniel, Ethylene Keystone to the Petrochemical Industry (New York, NY: Marcel Dekker, 1980, ISBN 0-8247-6914-7).
  9. C. Elschenbroich and A. Salzer, Organometallics: A Concise Introduction, 2nd ed. (Weinheim, Germany: Wiley-VCH, 2005, ISBN 3-527-28165-7).
  10. M.T. Crimmins, A.S. Kim-Meade, "Ethylene" in Encyclopedia of Reagents for Organic Synthesis Ed: L. Paquette (New York, NY: J. Wiley & Sons, 2004).
  11. 11.0 11.1 John Roach, Delphic Oracle's Lips May Have Been Loosened by Gas Vapors, National Geographic. Retrieved September 12, 2007.
  12. Transformer World, Tutorial No. 3. Retrieved September 12, 2007.
  13. B. Chow, P. McCourt, Plant hormone receptors: Perception is everything, Genes Dev 20: 15: 1998-2008.
  14. A. De Paepe, D. Van der Straeten, Ethylene biosynthesis and signaling: An overview, Vitam Horm 72 (2005): 399-430.
  15. S.F. Yang and N.E. Hoffman, Ethylene biosynthesis and its regulation in higher plants, Ann. Rev. Plant Physiol 35: 155-89.
  16. Plant Hormones, Epinasty. Retrieved September 12, 2007.

References
ISBN links support NWE through referral fees

  • Kniel, Ludwig, Olaf Winter, and Karl Stork. Ethylene, Keystone to the Petrochemical Industry. Chemical Industries, 2. New York: CRC Press, 1980. ISBN 0824769147.
  • McMurry, John. Organic Chemistry, 6th ed. Belmont, CA: Brooks/Cole, 2004. ISBN 0534420052.
  • Morrison, Robert T., and Robert N. Boyd. Organic Chemistry, 6th ed. Englewood Cliffs, NJ: Prentice Hall, 1992. ISBN 0-13-643669-2.
  • Solomons, T.W. Graham, and Fryhle, Craig B. Organic Chemistry, 8th ed. Hoboken, NJ: John Wiley, 2004. ISBN 0471417998.

External links

All links retrieved March 22, 2024.


 


Plant hormones edit

Abscisic acid - Auxins - Cytokinins - Ethylene (Ethene) - Gibberellins

Brassinosteroids - Jasmonates - Salicylic acid

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