Difference between revisions of "Bleach" - New World Encyclopedia

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[[Image:Bleach-bottle.jpg|right|thumb|150px|Commercial chlorine bleach.]]
 
  
To '''bleach''' something is to remove or lighten its [[color]]; a "bleach" is a [[chemical]] that can produce these effects, often via [[oxidation]]. Common chemical bleaches include a solution of [[sodium hypochlorite]] (NaOCl), or "chlorine bleach," and "oxygen bleach," which contains [[hydrogen peroxide]] or a peroxide-releasing compound such as [[sodium perborate]] or [[sodium percarbonate]]. "Bleaching powder" is [[calcium hypochlorite]]. Bleaching may be a preliminary step in the process of [[dyeing]].
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[[Image:Bleach-bottle.jpg|right|thumb|200px|Commercial chlorine bleach]]
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A '''bleach''' is a [[chemical]] that can remove or lighten the [[color]] of an object, often by a process known as [[oxidation]]. Common chemical bleaches include '''chlorine bleach''' ([[sodium hypochlorite]]) and '''oxygen bleach''' (peroxide-producing chemicals).
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{{toc}}
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Household bleach (chlorine bleach) is used in the home for whitening clothes, removing [[stain]]s, and [[disinfect]]ing. Peroxide-producing chemicals are common bleaching additives in [[detergent]]s and [[toothpaste]]s. Some [[organic peroxide]]s are used to bleach flour. In addition, [[chlorine dioxide]] is used to bleach [[wood pulp]], [[cellulose]], [[textile]]s, and [[fat]]s and [[oil]]s. Bleaching is often a preliminary step in the process of [[dyeing]].
  
== Types of bleach ==
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== History ==
 +
 
 +
[[Chlorine]] was first characterized by the [[Sweden|Swedish]] [[chemistry|chemist]] [[Carl Wilhelm Scheele]] in 1774. Based on the [[phlogiston theory]] that was widely accepted at the time, he called it "dephlogisticated marine acid." [[France|French]] chemist [[Claude Louis Berthollet]], noting the bleaching properties of chlorine, invented hypochlorite bleach in 1789. In [[French language|French]], bleach is known as ''Eau de Javel'', after the village where it was manufactured.
 +
 
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== Types of bleach and their uses ==
  
Household bleach, also known as '''chlorine bleach''', [[sodium hypochlorite]] (NaClO), has a [[pH]] level of 11 and is used in the home for whitening clothes, removing [[stain]]s, and [[disinfect]]ing. This is because sodium hypochlorite yields [[chlorine]] [[radical (chemistry)|radical]]s [[oxidizing agent]]s readily reacting with many substances. Using chlorine bleach on garments made of wool, nylon, silk, leather or any amount of [[spandex]] will stain the garment yellow which is permanent or very difficult to remove.<ref>http://experts.about.com/q/Cleaning-2305/Yellow-Bleach-Stain.htm</ref>
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Household bleach, also known as chlorine bleach, has the chemical name [[sodium hypochlorite]], with the formula NaClO (or NaOCl). It has a [[pH]] of 11 and is used in the home for whitening clothes, removing [[stain]]s, and [[disinfect]]ing. In this process, sodium hypochlorite yields [[chlorine]] [[radical (chemistry)|radical]]s, which are [[oxidizing agent]]s that readily react with many substances.
  
Chlorine bleach is often used with [[laundry detergent]]s and is also commonly used as a [[disinfectant]].  Mixing bleach and cleaners containing [[ammonia]], or using bleach to clean up [[urine]] can create toxic [[chloramine]] gases and an explosive called [[nitrogen trichloride]].
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Chlorine bleach is often used with laundry [[detergent]]s and is also a common disinfectant. Using chlorine bleach on garments made of [[wool]], [[nylon]], [[silk]], [[leather]] or any amount of [[spandex]] will stain the garment yellow which is permanent or very difficult to remove.<ref>[http://experts.about.com/q/Cleaning-2305/Yellow-Bleach-Stain.htm Cleaning Up: Yellow Bleach Stain,] AllExperts.com. Retrieved August 10, 2007.</ref>
  
Hair bleach contains H<sub><small>2</small></sub>O<sub><small>2</small></sub> ([[hydrogen peroxide]]), which gives off [[active oxygen|oxygen radicals]] as it decomposes. [[Oxygen]] and chlorine radicals both have comparable bleaching effects.
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Another agent with similar action is '''bleaching powder'''. It consists of a mixture of calcium chloride (CaCl<sub>2</sub>), [[calcium hypochlorite]] (Ca(OCl)<sub>2</sub>), and calcium chloride hypochlorite (CaCl(OCl)).
  
Various other peroxide yielding chemicals are used as bleaching additives. [[Sodium perborate]], [[sodium percarbonate]], [[sodium persulfate]], [[sodium perphosphate]], [[sodium persilicate]], their ammonium, potassium and lithium analogs, [[calcium peroxide]], [[zinc peroxide]], [[sodium peroxide]], [[carbamide peroxide]], and others are commonly used in [[detergent]]s, [[toothpaste]]s, and other products.
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Oxygen bleach contains [[hydrogen peroxide]] or a peroxide-releasing compound. A common example is hair bleach, which contains hydrogen peroxide (H<sub><small>2</small></sub>O<sub><small>2</small></sub>). As hydrogen peroxide decomposes, it gives off [[active oxygen|oxygen radicals]]. [[Oxygen]] and chlorine radicals both have comparable bleaching effects.
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Various other peroxide-yielding chemicals are commonly used as bleaching additives in [[detergent]]s, [[toothpaste]]s, and other products. Examples are [[sodium perborate]], [[sodium percarbonate]], [[sodium persulfate]], [[sodium perphosphate]], [[sodium persilicate]], and their ammonium, potassium, and lithium analogs. In addition, [[calcium peroxide]], [[zinc peroxide]], [[sodium peroxide]], or [[carbamide peroxide]] may be used.
  
 
[[Chlorine dioxide]] is used for the bleaching of [[wood pulp]], [[fat]]s and [[oil]]s, [[cellulose]], [[flour]], [[textile]]s, [[beeswax]], and in a number of other industries.
 
[[Chlorine dioxide]] is used for the bleaching of [[wood pulp]], [[fat]]s and [[oil]]s, [[cellulose]], [[flour]], [[textile]]s, [[beeswax]], and in a number of other industries.
  
In the food industry, some [[organic peroxide]]s ([[benzoyl peroxide]], etc.) and other agents (e.g. [[bromate]]s) are used as [[flour bleaching agent|flour bleaching]] and [[maturing agent]]s.
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In the food industry, some [[organic peroxide]]s (such as [[benzoyl peroxide]]) and other agents (such as [[bromate]]s) are used as [[flour bleaching agent|flour bleaching]] and [[maturing agent]]s.
  
Not all bleaches have to be of oxidizing nature. [[Sodium dithionite]] is used as a powerful reducing agent in some bleaching formulas.
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Not all bleaches are oxidizing agents. For example, [[sodium dithionite]] is used as a powerful reducing agent in some bleaching formulas.
  
 
== How bleaches work ==
 
== How bleaches work ==
{{sectstub}}
 
  
Color in most [[dye]]s and [[pigment]]s are produced by molecules, such as [[beta carotene]], that contain [[moiety|moieties]] (pieces) known as [[chromophore]]s. Chemical bleaches work in one of two ways:
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The color of a [[dye]] or [[pigment]] is usually produced by a color-generating portion called a "[[chromophore]]" within each of its molecules. To remove the color, chemical bleaches work in one of two ways:
  
*An oxidizing bleach works by breaking the [[chemical bond]]s that make up the chromophore. This changes the molecule into a different substance that either does not contain a chromophore, or contains a chromophore that does not absorb [[visible light]].
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* An oxidizing bleach breaks up the [[chemical bond]]s that make up the chromophore. This changes the molecule into a different substance that either (a) does not contain a chromophore, or (b) contains a chromophore that does not absorb [[visible light]].  
  
*A reducing bleach works by converting [[double bond]]s in the chromophore into [[single bond]]s. This eliminates the ability of the chromophore to absorb visible light.<ref>{{ cite web|url=http://sci-toys.com/ingredients/bleach.html| title=Ingredients Bleach| work=Science Toys| year=2006| accessdate=2006-03-02|author=Field, Simon Q}}</ref>
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* A reducing bleach works by converting [[double bond]]s in the chromophore into [[single bond]]s. This eliminates the ability of the chromophore to absorb visible light.<ref>Simon Q. Field, [http://sci-toys.com/ingredients/bleach.html Ingredients Bleach,] Science Toys. Retrieved August 10, 2007.</ref>
  
Sunlight acts as a bleach through a process leading to similar results: high energy [[photon]]s of light, often in the [[Violet (color)|violet]] or [[ultraviolet]] range, can disrupt the bonds in the chromophore, rendering the resulting substance colorless.<ref>{{ cite web|url=http://howthingswork.virginia.edu/sunlight.html| title=Sunlight| work=How Things Work Home Page| year=2006| accessdate=2006-03-02|author=Bloomfield, Louis A}}</ref>
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Sunlight acts as a bleach through a process that may have similar effects on the chromophore. High-energy [[photon]]s of light, often in the violet or [[ultraviolet]] range, can disrupt the bonds in the chromophore, rendering the resultant substance colorless.
  
 
== Hazards ==
 
== Hazards ==
  
A problem with chlorine is that it reacts with organic material to form [[trihalomethane]]s like [[chloroform]], which is a well known [[carcinogen]]. There is debate over whether any risk from the chloroform in treated [[drinking water]] is worth the benefits. However, the use of elemental chlorine in industrial processes such as paper bleaching, with its attendant production of organochlorine-persistent organic pollutants (including [[dioxins]]), does not have any benefits. As a consequence over 80 % of the woodpulp is nowadays bleached with chlorine dioxide, reducing the dioxin generation under detectable levels.
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A problem with chlorine is that it reacts with organic material to form [[trihalomethane]]s like [[chloroform]], which is a well-known [[carcinogen]]. There is an ongoing debate over whether any risk from the chloroform in treated [[drinking water]] is worth the benefits. Yet, the use of elemental chlorine in industrial processes such as paper bleaching, with its attendant production of organic pollutants (such as [[dioxins]]), does not have any benefits. Consequently, over 80 percent of woodpulp is bleached with chlorine dioxide, reducing the generation dioxin below detectable levels.
  
Chlorine is a respiratory irritant. It also attacks [[mucous membrane]]s and [[burn (injury)|burns]] the skin. As little as 3.5 [[parts_per_million|ppm]] can be detected as an odor, and 1000 [[parts_per_million|ppm]] is likely to be fatal after a few deep breaths. Exposure to chlorine should not exceed 0.5 [[parts_per_million|ppm]] (8-hour time-weighted average - 40 hour week).
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Chlorine is a respiratory irritant. It also attacks [[mucous membrane]]s and [[burn (injury)|burns]] the skin. As little as 3.5 parts per million (ppm) can be detected as an odor, and 1,000 ppm is likely to be fatal after a few deep breaths. Exposure to chlorine should not exceed 0.5 ppm (for an eight-hour time-weighted average, during a 40-hour week).
  
Another hazard is the formation of acrid [[chloramine]] fumes when hypochlorite bleach comes into contact with [[ammonia]] or [[urine]], which, though not nearly as dangerous as chlorine, can cause severe respiratory distress.
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Chlorine bleach should not be mixed with cleaners containing [[ammonia]] or used to clean up [[urine]]. Such mixtures produce toxic [[chloramine]] fumes and an explosive called [[nitrogen trichloride]].
  
For these reasons, some consumers prefer the use of [[Natural Cleaning Products|natural cleaning products]] as an alternative to chemical cleaners.
+
For these reasons, some consumers prefer the use of natural cleaning products as an alternative to chemical cleaners.
  
== History ==
+
== Footnotes ==
 
+
<references/>
[[Chlorine]] was first characterized by the [[Sweden|Swedish]] [[chemist]] [[Carl Wilhelm Scheele]] in [[1774]]. (As an adherent of the [[Phlogiston theory]], he called it "dephlogisticated marine acid".) [[Frenchman|French]] [[chemist]] [[Claude Louis Berthollet]], noting the bleaching properties of chlorine, invented hypochlorite bleach in [[1789]]. In [[French language|French]], bleach is known as ''[[Eau de Javel]]'', after the village where it was manufactured.
 
  
 
== References ==
 
== References ==
  
<div class="references-small">
+
* Best, A. K. 2004. ''Dyeing and Bleaching: Natural Fly-Tying Materials'', 2nd ed. New York: The Lyons Press. ISBN 1592280684
* E.R. Trotman. Textile Scouring and Bleaching. London: Charles Griffin & Co., 1968.
+
* Bodkins, Bailey. 1995. ''Bleach''. Philadelphia, PA: Virginia Printing Press.
* Dr. Bailey Bodkins. Bleach. Philedelphia: Virginia Printing Press 1995.
+
* Dence, Carlton W., and Douglas W. Reeve (eds.). 1996. ''Pulp Bleaching: Principles and Practice''. Textile Association of the Pulp and Paper Industry. ISBN 0898520630
* http://livre.inventeur.info/book_english/index-section.php3?cat_id=23
+
* Trotman, E. R. 1968. ''Textile Scouring and Bleaching''. London: Charles Griffin & Co.
</div>
 
{{reflist}}
 
  
 
== External links ==
 
== External links ==
 +
All links retrieved October 31, 2023.
 +
 +
* [http://www.lenntech.com/water-disinfection/disinfectants-chlorine.htm Lenntech Disinfectants: Chlorine]
  
* [http://c3.org/chlorine_knowledge_center/070397bleach.html Washington Post's ''A Sanitary History Of Household Bleach'']
 
  
 
[[Category:Physical sciences]]
 
[[Category:Physical sciences]]

Latest revision as of 18:12, 31 October 2023


Commercial chlorine bleach

A bleach is a chemical that can remove or lighten the color of an object, often by a process known as oxidation. Common chemical bleaches include chlorine bleach (sodium hypochlorite) and oxygen bleach (peroxide-producing chemicals).

Household bleach (chlorine bleach) is used in the home for whitening clothes, removing stains, and disinfecting. Peroxide-producing chemicals are common bleaching additives in detergents and toothpastes. Some organic peroxides are used to bleach flour. In addition, chlorine dioxide is used to bleach wood pulp, cellulose, textiles, and fats and oils. Bleaching is often a preliminary step in the process of dyeing.

History

Chlorine was first characterized by the Swedish chemist Carl Wilhelm Scheele in 1774. Based on the phlogiston theory that was widely accepted at the time, he called it "dephlogisticated marine acid." French chemist Claude Louis Berthollet, noting the bleaching properties of chlorine, invented hypochlorite bleach in 1789. In French, bleach is known as Eau de Javel, after the village where it was manufactured.

Types of bleach and their uses

Household bleach, also known as chlorine bleach, has the chemical name sodium hypochlorite, with the formula NaClO (or NaOCl). It has a pH of 11 and is used in the home for whitening clothes, removing stains, and disinfecting. In this process, sodium hypochlorite yields chlorine radicals, which are oxidizing agents that readily react with many substances.

Chlorine bleach is often used with laundry detergents and is also a common disinfectant. Using chlorine bleach on garments made of wool, nylon, silk, leather or any amount of spandex will stain the garment yellow which is permanent or very difficult to remove.[1]

Another agent with similar action is bleaching powder. It consists of a mixture of calcium chloride (CaCl2), calcium hypochlorite (Ca(OCl)2), and calcium chloride hypochlorite (CaCl(OCl)).

Oxygen bleach contains hydrogen peroxide or a peroxide-releasing compound. A common example is hair bleach, which contains hydrogen peroxide (H2O2). As hydrogen peroxide decomposes, it gives off oxygen radicals. Oxygen and chlorine radicals both have comparable bleaching effects.

Various other peroxide-yielding chemicals are commonly used as bleaching additives in detergents, toothpastes, and other products. Examples are sodium perborate, sodium percarbonate, sodium persulfate, sodium perphosphate, sodium persilicate, and their ammonium, potassium, and lithium analogs. In addition, calcium peroxide, zinc peroxide, sodium peroxide, or carbamide peroxide may be used.

Chlorine dioxide is used for the bleaching of wood pulp, fats and oils, cellulose, flour, textiles, beeswax, and in a number of other industries.

In the food industry, some organic peroxides (such as benzoyl peroxide) and other agents (such as bromates) are used as flour bleaching and maturing agents.

Not all bleaches are oxidizing agents. For example, sodium dithionite is used as a powerful reducing agent in some bleaching formulas.

How bleaches work

The color of a dye or pigment is usually produced by a color-generating portion called a "chromophore" within each of its molecules. To remove the color, chemical bleaches work in one of two ways:

  • An oxidizing bleach breaks up the chemical bonds that make up the chromophore. This changes the molecule into a different substance that either (a) does not contain a chromophore, or (b) contains a chromophore that does not absorb visible light.
  • A reducing bleach works by converting double bonds in the chromophore into single bonds. This eliminates the ability of the chromophore to absorb visible light.[2]

Sunlight acts as a bleach through a process that may have similar effects on the chromophore. High-energy photons of light, often in the violet or ultraviolet range, can disrupt the bonds in the chromophore, rendering the resultant substance colorless.

Hazards

A problem with chlorine is that it reacts with organic material to form trihalomethanes like chloroform, which is a well-known carcinogen. There is an ongoing debate over whether any risk from the chloroform in treated drinking water is worth the benefits. Yet, the use of elemental chlorine in industrial processes such as paper bleaching, with its attendant production of organic pollutants (such as dioxins), does not have any benefits. Consequently, over 80 percent of woodpulp is bleached with chlorine dioxide, reducing the generation dioxin below detectable levels.

Chlorine is a respiratory irritant. It also attacks mucous membranes and burns the skin. As little as 3.5 parts per million (ppm) can be detected as an odor, and 1,000 ppm is likely to be fatal after a few deep breaths. Exposure to chlorine should not exceed 0.5 ppm (for an eight-hour time-weighted average, during a 40-hour week).

Chlorine bleach should not be mixed with cleaners containing ammonia or used to clean up urine. Such mixtures produce toxic chloramine fumes and an explosive called nitrogen trichloride.

For these reasons, some consumers prefer the use of natural cleaning products as an alternative to chemical cleaners.

Footnotes

  1. Cleaning Up: Yellow Bleach Stain, AllExperts.com. Retrieved August 10, 2007.
  2. Simon Q. Field, Ingredients — Bleach, Science Toys. Retrieved August 10, 2007.

References
ISBN links support NWE through referral fees

  • Best, A. K. 2004. Dyeing and Bleaching: Natural Fly-Tying Materials, 2nd ed. New York: The Lyons Press. ISBN 1592280684
  • Bodkins, Bailey. 1995. Bleach. Philadelphia, PA: Virginia Printing Press.
  • Dence, Carlton W., and Douglas W. Reeve (eds.). 1996. Pulp Bleaching: Principles and Practice. Textile Association of the Pulp and Paper Industry. ISBN 0898520630
  • Trotman, E. R. 1968. Textile Scouring and Bleaching. London: Charles Griffin & Co.

External links

All links retrieved October 31, 2023.

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