Difference between revisions of "Photocopy" - New World Encyclopedia

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[[Image:xeroxcopier.jpeg|thumb|350px|A small, much-used [[Xerox]] copier in a [[high school]] library.]]
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[[Image:xeroxcopier.jpeg|thumb|350px|A small, much-used [[Xerox]] copier in a [[high school]] [[library]].]]
  
'''Photocopying''' is a process that makes [[paper]] copies of documents and other visual images quickly and cheaply. Most current photocopiers use a technology called ''[[xerography]]'', a dry process using heat. (Copiers can also use other output technologies such as [[inkjet printer|ink jet]], but xerography is standard for office copying.)  
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'''Photocopying''' is a process that makes [[paper]] copies of documents and other visual images quickly and cheaply. Most current photocopiers use a technology called ''[[xerography]],'' a dry process using heat. (Copiers can also use other output technologies such as [[inkjet printer|ink jet]], but xerography is standard for office copying.)  
  
Xerographic office photocopying was introduced by [[Xerox]] in the 1960s, and over the following 20 years it gradually replaced copies made by Verifax, [[Photostat]], [[carbon paper]], [[mimeograph machine]]s, and other [[duplicating machines]]. The prevalence of its use is one of the factors that prevented the development of the [[paperless office]] heralded early in the [[digital revolution]].
+
Xerographic office photocopying was introduced by [[Xerox]] in the 1960s, and over the following 20 years it gradually replaced copies made by Verifax, [[Photostat]], [[carbon paper]], [[mimeograph machine]]s, and other [[duplicating machine]]s. The prevalence of its use is one of the factors that prevented the development of the [[paperless office]] heralded early in the [[digital revolution]].
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{{toc}}
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Photocopying is widely used in [[business]], [[education]], and [[government]]. There have been many predictions that photocopiers will eventually become obsolete as information workers continue to increase their digital document creation and distribution and rely less on distributing actual pieces of paper. However, photocopiers are undeniably more convenient than [[computer]]s for the very common task of creating a copy of a piece of paper.
  
Photocopying is widely used in business, education, and government. There have been many predictions that photocopiers will eventually become obsolete as information workers continue to increase their digital document creation and distribution and rely less on distributing actual pieces of paper. However, photocopiers are undeniably more convenient than computers for the very common task of creating a copy of a piece of paper.
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==Invention==
  
==Invention==
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In 1937, [[Bulgaria]]n [[physics|physicist]] [[Georgi Nadjakov]] found that when placed in an electric field and exposed to light, some [[dielectric]] materials acquire permanent electrical polarization in the exposed areas.<ref>Georgi Nadjakov Institute of Solid State Physics, Photoelectrets, Bulgarian Academy of Sciences.</ref> That polarization persists in the dark and is destroyed in light.
  
In 1937, [[bulgaria|Bulgarian]] [[physicist]] [[Georgi Nadjakov]] found that when placed in an electric field and exposed to light, some [[dielectric]] materials acquire permanent electrical polarization in the exposed areas.<ref>[http://www.issp.bas.bg/lab/ephi/Museum/acad_GNadjakov/GN11-page5.html Photoelectrets.]  Retrieved May 20, 2007.</ref> That polarization persists in the dark and is destroyed in light.
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[[Chester Carlson]], the inventor of photocopying, was originally a [[patent]] [[attorney]] and part-time researcher and inventor. His job at the patent office in [[New York]] required him to make a large number of copies of important papers. Carlson, who was [[arthritis|arthritic]], found this a painful and tedious process. This prompted him to conduct experiments with [[photoconductivity]]. Carlson experimented with "[[electrophotography]]" in his kitchen and in 1938, applied for a patent for the process. He made the first "photocopy" using a [[zinc]] plate covered with [[sulfur]]. The words "10-22-38 Astoria" were written on a [[microscope]] slide, which was placed on top of more sulfur and under a bright light. After the slide was removed, a mirror image of the words remained. Carlson tried to sell his [[invention]] to some companies, but because the process was still underdeveloped he failed. At the time multiple copies were made using carbon paper or duplicating machines and people did not feel the need for an electronic machine. Between 1939 and 1944, Carlson was turned down by over 20 companies, including [[International Business Machines|IBM]] and [[General Electric|GE]], neither of which believed there was a significant market for copiers.
[[Chester Carlson]], the inventor of photocopying, was originally a [[patent attorney]] and part-time researcher and inventor. His job at the patent office in [[New York]] required him to make a large number of copies of important papers. Carlson, who was [[arthritis|arthritic]], found this a painful and tedious process. This prompted him to conduct experiments with [[photoconductivity]]. Carlson experimented with "[[electrophotography]]" in his kitchen and in 1938, applied for a patent for the process. He made the first "photocopy" using a [[zinc]] plate covered with [[sulfur]]. The words "10-22-38 Astoria" were written on a [[microscope]] slide, which was placed on top of more sulfur and under a bright light. After the slide was removed, a mirror image of the words remained. Carlson tried to sell his invention to some companies, but because the process was still underdeveloped he failed. At the time multiple copies were made using carbon paper or duplicating machines and people did not feel the need for an electronic machine. Between 1939 and 1944, Carlson was turned down by over 20 companies, including [[IBM]] and [[General Electric|GE]], neither of which believed there was a significant market for copiers.
 
  
In 1944, the [[Battelle Memorial Institute]], a non-profit organization in [[Columbus, Ohio]], contracted with Carlson to refine his new process. Over the next five years, the institute conducted experiments to improve the process of electrophotography. In 1947 [[Haloid]] (a small New York-based organization manufacturing and selling photographic paper at that time) approached Battelle to obtain a license to develop and market a copying machine based on this technology.  
+
In 1944, the [[Battelle Memorial Institute]], a [[non-profit organization]] in Columbus, [[Ohio]], [[contract]]ed with Carlson to refine his new process. Over the next five years, the institute conducted experiments to improve the process of electrophotography. In 1947, Haloid (a small New York-based organization manufacturing and selling photographic paper at that time) approached Battelle to obtain a license to develop and market a copying machine based on this technology.  
  
Haloid felt that the word "electrophotography" was too complicated and did not have good recall value. After consulting a professor of classical language at [[Ohio State University]], Haloid and Carlson changed the name of the process to "[[Xerography]]," derived from [[Greek language|Greek]] words which meant "dry writing." Haloid decided to call the new copier machines "Xerox," a name that was trademarked in 1948.
+
Haloid felt that the word "electrophotography" was too complicated and did not have good recall value. After consulting a professor of classical language at [[Ohio State University]], Haloid and Carlson changed the name of the process to "[[Xerography]]," derived from [[Greek language|Greek]] words that meant "dry writing." Haloid decided to call the new copier machines "Xerox," a name that was trademarked in 1948.
  
 
In the early 1950s, RCA (Radio Corporation of America) introduced a variation on the process called [[Electrofax]] where images are formed directly on specially coated paper and rendered with a toner dispersed in a liquid.
 
In the early 1950s, RCA (Radio Corporation of America) introduced a variation on the process called [[Electrofax]] where images are formed directly on specially coated paper and rendered with a toner dispersed in a liquid.
  
 
==How a photocopier works (using xerography)==
 
==How a photocopier works (using xerography)==
[[Image:Xerographic photocopy process.jpg|thumb|right|220px|Schematic overview of the xerographic photocopying process (steps 1-4).]]
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[[Image:Xerographic photocopy process.jpg|thumb|right|220px|Schematic overview of the xerographic photocopying process (steps 1–4).]]
  
 
#'''Charging''': The surface of a cylindrical drum is given an electrostatic charge by either a high voltage wire called a corona wire or a charge roller. The drum is coated with a photoconductive material, such as [[selenium]]. A [[photoconductivity|photoconductor]] is a [[semiconductor]] that becomes conductive when exposed to light.
 
#'''Charging''': The surface of a cylindrical drum is given an electrostatic charge by either a high voltage wire called a corona wire or a charge roller. The drum is coated with a photoconductive material, such as [[selenium]]. A [[photoconductivity|photoconductor]] is a [[semiconductor]] that becomes conductive when exposed to light.
#'''Exposure''': A bright lamp is shined onto the original document, and the white areas of the original document reflect the light onto the surface of the photoconductive drum. The areas of the drum that are exposed to light (those areas that correspond to white areas of the original document) become conductive and therefore discharge to ground. The area of the drum not exposed to light (those areas that correspond to black portions of the original document) remain negatively charged. The result is a latent electrical image on the surface of the drum.
+
#'''Exposure''': A bright lamp is shined onto the original document, and the white areas of the original document reflect the light onto the surface of the photoconductive drum. The areas of the drum that are exposed to light (those areas that correspond to white areas of the original document) become conductive and therefore discharge to ground. The area of the drum not exposed to light (those areas that correspond to black portions of the original document) remains negatively charged. The result is a latent electrical image on the surface of the drum.
 
#'''Developing''': The toner is positively charged. When it is applied to the drum to develop the image, it is attracted and sticks to the areas that are negatively charged (black areas), just as paper sticks to a toy balloon with a static charge.
 
#'''Developing''': The toner is positively charged. When it is applied to the drum to develop the image, it is attracted and sticks to the areas that are negatively charged (black areas), just as paper sticks to a toy balloon with a static charge.
 
#'''Transfer''': The resulting toner image on the surface of the drum is transferred from the drum onto a piece of paper with a higher negative charge than the drum.
 
#'''Transfer''': The resulting toner image on the surface of the drum is transferred from the drum onto a piece of paper with a higher negative charge than the drum.
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==Use==
 
==Use==
 
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In 1949, the Xerox introduced the first xerographic copier called Model A. Xerox became so successful that photocopying came to be popularly known as "xeroxing," a situation that Xerox has very actively fought in order to prevent "Xerox" from becoming a [[genericized trademark]]. "Xerox" has been found in some dictionaries as the synonym of photocopying, leading to letters and ads from the Xerox Corporation asking that the entries be modified, and that people not use the term "Xerox" in this way. However, this is mainly only true for [[North America]]&mdash;for example, in the [[United Kingdom]] the term "photocopying" is far more common than "Xeroxing," probably due to photocopiers from [[Japan|Japanese]] and [[Europe|European]] manufacturers being far more commonly available than Xerox machines when photocopying started becoming popular. "Photostat" is an outdated term for a photocopy, which some in the United Kingdom still use. Some [[language]]s use hybrid terms, such as widely used in [[Polish language|Polish]] term ''kserokopia'' ("xerocopy"), even despite relatively low percentage of the copying machines available being branded Xerox.
In 1949, the Xerox introduced the first xerographic copier called Model A. Xerox became so successful that photocopying came to be popularly known as "xeroxing," a situation that Xerox has very actively fought in order to prevent "Xerox" from becoming a [[genericized trademark]]. "Xerox" has been found in some dictionaries as the synonym of photocopying, leading to letters and ads from the Xerox corporation asking that the entries be modified, and that people not use the term "Xerox" in this way. However, this is mainly only true for [[North America]]&mdash;for example, in the [[United Kingdom]] the term "photocopying" is far more common than "Xeroxing," probably due to photocopiers from [[Japan|Japanese]] and [[Europe|European]] manufacturers being far more commonly available than Xerox machines when photocopying started becoming popular. "Photostat" is an outdated term for a photocopy, which some in the United Kingdom still use. Some languages use hybrid terms, such as widely used in [[Polish language|Polish]] term ''kserokopia'' ("xerocopy"), even despite relatively low percentage of the copying machines available being branded Xerox.
 
  
 
Advances in technology developed the process of electrostatic copying technology where a high-contrast, electrostatic image copy is created on a drum and then a fusible plastic powder (called [[toner]]) is transferred to regular paper, heated, and then fused into the paper similar to the technology used in [[laser printer]]s.
 
Advances in technology developed the process of electrostatic copying technology where a high-contrast, electrostatic image copy is created on a drum and then a fusible plastic powder (called [[toner]]) is transferred to regular paper, heated, and then fused into the paper similar to the technology used in [[laser printer]]s.
  
Prior to the widespread adoption of xerographic copiers, photo-direct copies produced by machines such as Kodak's Verifax were used. A primary obstacle associated with the pre-xerographic copying technologies was the high cost of supplies: a Verifax print required supplies costing USD $0.15 in 1969, when a Xerox print could be made for USD $0.03 including paper and labor. At that period, Thermofax photocopying machines in libraries would make letter-sized copies for $0.25 or more, when the minimum wage for a US worker was USD $1.65.
+
Prior to the widespread adoption of xerographic copiers, photo-direct copies produced by machines such as Kodak's Verifax were used. A primary obstacle associated with the pre-xerographic copying technologies was the high cost of supplies: a Verifax print required supplies costing US$0.15 in 1969, when a Xerox print could be made for US$0.03 including paper and labor. At that period, Thermofax photocopying machines in [[library|libraries]] would make letter-sized copies for $0.25 or more, when the minimum wage for a U.S. worker was US$1.65.
  
 
Xerographic copier manufacturers took advantage of the high perceived-value situation of the 1960s and early 1970s and marketed paper that was "specially designed" for xerographic output. By the end of the 1970s paper producers had made xerographic "runability" one of the requirements for most of their office paper brands.
 
Xerographic copier manufacturers took advantage of the high perceived-value situation of the 1960s and early 1970s and marketed paper that was "specially designed" for xerographic output. By the end of the 1970s paper producers had made xerographic "runability" one of the requirements for most of their office paper brands.
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===Digital technology===
 
===Digital technology===
  
In recent years, all new photocopiers have adopted [[digital]] technology, replacing the older [[analog signal|analog]] technology. With digital copying, the copier effectively consists of an integrated [[image scanner|scanner]] and [[laser printer]]. This design has several advantages, such as automatic image quality enhancement and the ability to "build jobs" or scan page images independently of the process of printing them. Some digital copiers can function as high-speed scanners; such models typically have the ability to send documents via email or make them available on a local area network.
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In recent years, all new photocopiers have adopted [[digital]] technology, replacing the older [[analog signal|analog]] technology. With digital copying, the copier effectively consists of an integrated [[image scanner|scanner]] and [[laser printer]]. This design has several advantages, such as automatic image quality enhancement and the ability to "build jobs" or scan page images independently of the process of printing them. Some digital copiers can function as high-speed scanners; such models typically have the ability to send documents via [[email]] or make them available on a [[local area network]].
  
The greatest advantage of a digital copier is "automatic digital [[collation]]." When copying a set of twenty pages twenty times, for example, a digital copier scans each page only once, then uses the stored information to produce twenty sets. In an analog copier, either each page is scanned twenty times (a total of 400 scans), making one set at a time, or twenty separate output trays are used for the twenty sets.
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The greatest advantage of a digital copier is "automatic digital [[collation]]." When copying a set of twenty pages twenty times, for example, a digital copier scans each page only once and then uses the stored information to produce twenty sets. In an analog copier, either each page is scanned twenty times (a total of 400 scans), making one set at a time, or twenty separate output trays are used for the twenty sets.
  
Low-end copiers also use [[digital]] technology, but they tend to consist of a standard PC scanner coupled to an inkjet or low-end laser printer, both of which are far slower than their counterparts in high-end copiers. However, low-end scanner inkjets can provide color copying at a far lower cost than a traditional color copier. The cost of electronics is such that combined scanner-printers sometimes have built-in fax machines. (See [[Multifunction printer]].)
+
Low-end copiers also use digital technology, but they tend to consist of a standard PC scanner coupled to an inkjet or low-end laser printer, both of which are far slower than their counterparts in high-end copiers. However, low-end scanner inkjets can provide color copying at a far lower cost than a traditional color copier. The cost of electronics is such that combined scanner–printers sometimes have built-in [[fax]] machines.
  
 
==Color photocopiers==
 
==Color photocopiers==
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==Copyright issues==
 
==Copyright issues==
Photocopying material which is subject to [[copyright]] (such as books or scientific papers) is subject to restrictions in most countries. It is common practice, especially by students, as the cost of purchasing a book for the sake of one article or a few pages may be excessive. The principle of [[fair use]] (in the United States) or [[fair dealing]] (in other [[Berne Convention for the Protection of Literary and Artistic Works|Berne Convention]] countries) allows this type of copying for research purposes.  
+
Photocopying material that is subject to [[copyright]] (such as [[book]]s or scientific papers) is subject to restrictions in most countries. It is common practice, especially by students, as the cost of purchasing a book for the sake of one article or a few pages may be excessive. The principle of [[fair use]] (in the [[United States]]) or [[fair dealing]] (in other [[Berne Convention for the Protection of Literary and Artistic Works|Berne Convention]] countries) allows this type of copying for research purposes.  
  
 
In some countries, such as [[Canada]], some [[university|universities]] pay royalties from each photocopy made at university copy machines and copy centers to [[copyright collective]]s out of the revenues from the photocopying and these collectives distribute these funds to various scholarly publishers. In the United States, photocopied compilations of articles, handouts, graphics, and other information called ''readers'' are often required texts for college classes. Either the instructor or the copy center is responsible for clearing copyright for every article in the reader and attribution information is included in the front of the reader.
 
In some countries, such as [[Canada]], some [[university|universities]] pay royalties from each photocopy made at university copy machines and copy centers to [[copyright collective]]s out of the revenues from the photocopying and these collectives distribute these funds to various scholarly publishers. In the United States, photocopied compilations of articles, handouts, graphics, and other information called ''readers'' are often required texts for college classes. Either the instructor or the copy center is responsible for clearing copyright for every article in the reader and attribution information is included in the front of the reader.
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== Health Issues ==
 
== Health Issues ==
  
Ultraviolet exposure does remain a concern. In the early days of photocopiers, the sensitizing light source was filtered green to match the optimal sensitivity of the photoconductive surface. This filtering conveniently removed all ultraviolet radiation.<ref>W. E. Virchow, "Exposure to Xerox Copier Safer Than 10 Seconds of Sunlight," ''Bulletin of the American Group-IIC'' 7 (1967): 21. Referenced online [http://aic.stanford.edu/sg/bpg/annual/v08/bp08-05.html#note17 here]. Retrieved May 10, 2007.</ref> Today a variety of light sources may be used. As [[glass]] transmits ultraviolet rays between 325 and 400 nanometers, copiers with ultraviolet-producing lights such as fluorescent, tungsten halogen or xenon flash will expose documents to some ultraviolet.<ref>Garry Thomson, ''The Museum Environment'' (Boston: Butterworths, 1981, p. 157; Cassiers, p. 133). Referenced online [http://aic.stanford.edu/sg/bpg/annual/v08/bp08-05.html#note18 here]. Retrieved May 10, 2007.</ref>
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Ultraviolet exposure due to the use of photocopiers is a health concern today. In response to this, “the sensitizing light source was filtered green to match the optimal sensitivity of the photoconductive surface. This filtering conveniently removed all ultraviolet” radiation.<ref>Kitty Nicholson, [http://aic.stanford.edu/sg/bpg/annual/v08/bp08-05.html Photocopier Hazards and a Conservation Case Study], ''The Book and Paper Group Annual'' 8 (1989). Retrieved January 15, 2008.</ref>  
  
 
== Forensic identification ==
 
== Forensic identification ==
<!-- Identical with computer printers. Changes here should be done there too. >
+
Similar to [[forensic identification]] of [[typewriter]]s, [[computer printer]]s and copiers can be traced by imperfections in their output. The mechanical tolerances of the toner and paper feed mechanisms cause [[banding]], which contain information about the individual device's mechanical properties. It is usually possible to identify the manufacturer and brand, but in some cases the individual printer can be identified from a set of known printers by comparing their outputs.<ref>Emil Venere, [http://news.uns.purdue.edu/UNS/html4ever/2004/041011.Delp.forensics.html Printer forensics to aid homeland security, tracing counterfeiters], ''Purdue News Service,'' October 12, 2004; Jennifer Viegas, [http://dsc.discovery.com/news/briefs/20041011/printer.html Computer Printers Can Catch Terrorists], ''Discovery News,'' October 18, 2004. Both links retrieved January 15, 2008.</ref>
  
Similar to [[forensic identification]] of [[typewriter]]s, [[computer printer]]s and copiers can be traced by imperfections in their output. The mechanical tolerances of the toner and paper feed mechanisms cause [[banding]], which contain information about the individual device's mechanical properties. It is usually possible to identify the manufacturer and brand, but in some cases the individual printer can be identified from a set of known printers by comparing their outputs.<ref>[http://news.uns.purdue.edu/UNS/html4ever/2004/041011.Delp.forensics.html Printer forensics to aid homeland security, tracing counterfeiters.] ''Purdue University''. Retrieved May 20, 2007.</ref> <ref>[http://dsc.discovery.com/news/briefs/20041011/printer.html Computer Printers Can Catch Terrorists.] ''Discovery Channel''. Retrieved May 20, 2007.</ref>
+
In 2005, some high-quality color printers and copiers were demonstrated to [[steganography|steganographically]] embed their identification code in the printed pages as fine and almost invisible patterns of yellow dots. This reportedly had been done by top-of-the-line copiers for several years. The sources identify [[Xerox]] and [[Canon Inc.|Canon]] as firms engaging in this practice.<ref>Jason Tuohey, Government Uses Color Laser Printer Technology to Track Documents, ''PC World,'' November 22, 2004; Wilbert de Vries, [http://www.pcworld.idg.com.au/index.php/id;1002274598 Dutch track counterfeits via printer serial numbers], ''Australian PC World,'' November 26, 2004. Retrieved January 15, 2008.</ref> The U.S. government has been reported to have asked these companies to implement such a tracking scheme so that counterfeiting can be traced.
 
 
In 2005, some high-quality color printers and copiers were demonstrated to [[steganography|steganographically]] embed their identification code in the printed pages as fine and almost invisible patterns of yellow dots. This reportedly had been done by top-of-the-line copiers for several years. The sources identify [[Xerox]] and [[Canon Inc.|Canon]] as firms engaging in this practice.<ref>[http://www.pcworld.com/news/article/0,aid,118664,00.asp Government Uses Color Laser Printer Technology to Track Documents.] ''PC World''. Retrieved May 20, 2007.</ref> <ref>[http://www.pcworld.idg.com.au/index.php/id;1002274598 Dutch track counterfeits via printer serial numbers.] ''PC World''. Retrieved May 20, 2007.</ref> The U.S. government has been reported to have asked these companies to implement such a tracking scheme so that [[counterfeit]]ing can be traced.
 
  
 
==See also==  
 
==See also==  
Line 89: Line 87:
  
 
== References ==
 
== References ==
 +
* Firpo, Patrick. 1978. ''Copyart: The First Complete Guide to the Copy Machine.'' London: Putnam Publishing Group. ISBN 0399900160.
 +
* Kuaimoku, Eric. 1993. ''Professional Photocopier Troubleshooting and Repair.'' New York: Tab Books. ISBN 0830643087.
 +
* Nyborg, Randell L. 1993. ''How to Service/Repair Your Copy Machine.'' Mannford, OK: University Publishing House. ISBN 1877767840.
 +
* Owen, David. 2004. ''Copies in Seconds: How a Lone Inventor and an Unknown Company Created the Biggest Communication Breakthrough since Gutenberg: Chester Carlson and the Birth of the Xerox Machine.'' New York: Simon & Schuster. ISBN 0743251172.
 +
* Schaffert, R. 1975. ''Electrophotography.'' St. Louis, MO: Focal Press. ISBN 0240507819.
  
* Schaffert, R. 1975. ''Electrophotography''. St. Louis, MO: Focal Press. ISBN 0240507819.
 
 
* Owen, David. 2004. ''Copies in seconds : how a lone inventor and an unknown company created the biggest communication breakthrough since Gutenberg: Chester Carlson and the birth of the Xerox machine.'' New York: Simon & Schuster. ISBN 0743251172.
 
 
* Nyborg,Randell L. 1993. ''How to Service/Repair Your Copy Machine.'' Mannford, OK: University Publishing House. ISBN 1877767840.
 
 
* Kuaimoku, Eric. 1993. ''Professional Photocopier Troubleshooting and Repair.'' New York, NY: Tab Books. ISBN 0830643087.
 
 
* Firpo, Patrick. 1978. ''Copyart: The First Complete Guide to the Copy Machine.'' London, UK: Putnam Pub. Group. ISBN 0399900160.
 
 
==External links==
 
  
* [http://tumb1.biblio.tu-muenchen.de/publ/diss/ei/2004/hoffmann_r.pdf Detailed description and simulation of the electrophotographic print process]. Retrieved May 10, 2007.
 
*[http://www.digipro.co.uk/history-photocopier.html History of the photocopier machine]. Retrieved May 10, 2007.
 
*[http://www.2ndwave.co.uk/colourcopierworks/ How a color copier works]. Retrieved May 10, 2007.
 
  
 
[[Category:Physical sciences]]
 
[[Category:Physical sciences]]

Latest revision as of 22:46, 28 March 2023

A small, much-used Xerox copier in a high school library.

Photocopying is a process that makes paper copies of documents and other visual images quickly and cheaply. Most current photocopiers use a technology called xerography, a dry process using heat. (Copiers can also use other output technologies such as ink jet, but xerography is standard for office copying.)

Xerographic office photocopying was introduced by Xerox in the 1960s, and over the following 20 years it gradually replaced copies made by Verifax, Photostat, carbon paper, mimeograph machines, and other duplicating machines. The prevalence of its use is one of the factors that prevented the development of the paperless office heralded early in the digital revolution.

Photocopying is widely used in business, education, and government. There have been many predictions that photocopiers will eventually become obsolete as information workers continue to increase their digital document creation and distribution and rely less on distributing actual pieces of paper. However, photocopiers are undeniably more convenient than computers for the very common task of creating a copy of a piece of paper.

Invention

In 1937, Bulgarian physicist Georgi Nadjakov found that when placed in an electric field and exposed to light, some dielectric materials acquire permanent electrical polarization in the exposed areas.[1] That polarization persists in the dark and is destroyed in light.

Chester Carlson, the inventor of photocopying, was originally a patent attorney and part-time researcher and inventor. His job at the patent office in New York required him to make a large number of copies of important papers. Carlson, who was arthritic, found this a painful and tedious process. This prompted him to conduct experiments with photoconductivity. Carlson experimented with "electrophotography" in his kitchen and in 1938, applied for a patent for the process. He made the first "photocopy" using a zinc plate covered with sulfur. The words "10-22-38 Astoria" were written on a microscope slide, which was placed on top of more sulfur and under a bright light. After the slide was removed, a mirror image of the words remained. Carlson tried to sell his invention to some companies, but because the process was still underdeveloped he failed. At the time multiple copies were made using carbon paper or duplicating machines and people did not feel the need for an electronic machine. Between 1939 and 1944, Carlson was turned down by over 20 companies, including IBM and GE, neither of which believed there was a significant market for copiers.

In 1944, the Battelle Memorial Institute, a non-profit organization in Columbus, Ohio, contracted with Carlson to refine his new process. Over the next five years, the institute conducted experiments to improve the process of electrophotography. In 1947, Haloid (a small New York-based organization manufacturing and selling photographic paper at that time) approached Battelle to obtain a license to develop and market a copying machine based on this technology.

Haloid felt that the word "electrophotography" was too complicated and did not have good recall value. After consulting a professor of classical language at Ohio State University, Haloid and Carlson changed the name of the process to "Xerography," derived from Greek words that meant "dry writing." Haloid decided to call the new copier machines "Xerox," a name that was trademarked in 1948.

In the early 1950s, RCA (Radio Corporation of America) introduced a variation on the process called Electrofax where images are formed directly on specially coated paper and rendered with a toner dispersed in a liquid.

How a photocopier works (using xerography)

Schematic overview of the xerographic photocopying process (steps 1–4).
  1. Charging: The surface of a cylindrical drum is given an electrostatic charge by either a high voltage wire called a corona wire or a charge roller. The drum is coated with a photoconductive material, such as selenium. A photoconductor is a semiconductor that becomes conductive when exposed to light.
  2. Exposure: A bright lamp is shined onto the original document, and the white areas of the original document reflect the light onto the surface of the photoconductive drum. The areas of the drum that are exposed to light (those areas that correspond to white areas of the original document) become conductive and therefore discharge to ground. The area of the drum not exposed to light (those areas that correspond to black portions of the original document) remains negatively charged. The result is a latent electrical image on the surface of the drum.
  3. Developing: The toner is positively charged. When it is applied to the drum to develop the image, it is attracted and sticks to the areas that are negatively charged (black areas), just as paper sticks to a toy balloon with a static charge.
  4. Transfer: The resulting toner image on the surface of the drum is transferred from the drum onto a piece of paper with a higher negative charge than the drum.
  5. Fusing: The toner is melted and bonded to the paper by high-heat and high-pressure rollers.
  6. Cleaning: The drum is wiped clean with a rubber blade and completely discharged by light before beginning the process again.

This example is of a negatively charged drum and paper, and positively charged toner. Some copiers employ the opposite combination: a positively charged drum and paper, and negatively charged toner.

Use

In 1949, the Xerox introduced the first xerographic copier called Model A. Xerox became so successful that photocopying came to be popularly known as "xeroxing," a situation that Xerox has very actively fought in order to prevent "Xerox" from becoming a genericized trademark. "Xerox" has been found in some dictionaries as the synonym of photocopying, leading to letters and ads from the Xerox Corporation asking that the entries be modified, and that people not use the term "Xerox" in this way. However, this is mainly only true for North America—for example, in the United Kingdom the term "photocopying" is far more common than "Xeroxing," probably due to photocopiers from Japanese and European manufacturers being far more commonly available than Xerox machines when photocopying started becoming popular. "Photostat" is an outdated term for a photocopy, which some in the United Kingdom still use. Some languages use hybrid terms, such as widely used in Polish term kserokopia ("xerocopy"), even despite relatively low percentage of the copying machines available being branded Xerox.

Advances in technology developed the process of electrostatic copying technology where a high-contrast, electrostatic image copy is created on a drum and then a fusible plastic powder (called toner) is transferred to regular paper, heated, and then fused into the paper similar to the technology used in laser printers.

Prior to the widespread adoption of xerographic copiers, photo-direct copies produced by machines such as Kodak's Verifax were used. A primary obstacle associated with the pre-xerographic copying technologies was the high cost of supplies: a Verifax print required supplies costing US$0.15 in 1969, when a Xerox print could be made for US$0.03 including paper and labor. At that period, Thermofax photocopying machines in libraries would make letter-sized copies for $0.25 or more, when the minimum wage for a U.S. worker was US$1.65.

Xerographic copier manufacturers took advantage of the high perceived-value situation of the 1960s and early 1970s and marketed paper that was "specially designed" for xerographic output. By the end of the 1970s paper producers had made xerographic "runability" one of the requirements for most of their office paper brands.

Advances allowed for color photocopies and the area of xerox art developed in the 1970s and 1980s.

Some devices sold as photocopiers have replaced the drum-based process with inkjet or transfer film technology.

Among the key advantages of photocopiers over earlier copying technologies (some gradually adopted) are:

  • their ability to use plain (untreated) office paper.
  • duplex or two-sided printing.
  • the ability to sort and/or staple output.

Digital technology

In recent years, all new photocopiers have adopted digital technology, replacing the older analog technology. With digital copying, the copier effectively consists of an integrated scanner and laser printer. This design has several advantages, such as automatic image quality enhancement and the ability to "build jobs" or scan page images independently of the process of printing them. Some digital copiers can function as high-speed scanners; such models typically have the ability to send documents via email or make them available on a local area network.

The greatest advantage of a digital copier is "automatic digital collation." When copying a set of twenty pages twenty times, for example, a digital copier scans each page only once and then uses the stored information to produce twenty sets. In an analog copier, either each page is scanned twenty times (a total of 400 scans), making one set at a time, or twenty separate output trays are used for the twenty sets.

Low-end copiers also use digital technology, but they tend to consist of a standard PC scanner coupled to an inkjet or low-end laser printer, both of which are far slower than their counterparts in high-end copiers. However, low-end scanner inkjets can provide color copying at a far lower cost than a traditional color copier. The cost of electronics is such that combined scanner–printers sometimes have built-in fax machines.

Color photocopiers

Colored toner became available in the 1950s, although full-color copiers were not commercially available until 3M released the Color-in-Color copier in 1968, which used a dye sublimation process rather than the normal electrostatic technology. The first electrostatic color copier was released by Canon in 1973.

Color photocopying is a concern to governments since it makes counterfeiting currency much simpler. Some countries have introduced anti-counterfeiting technologies into their currency specifically to make it harder to use a color photocopier to counterfeit. These technologies include watermarks, microprinting, holograms, tiny security strips made of plastic, or other material, and ink that appears to change color as the currency is viewed at an angle. Some photocopying machines contain special software that will prevent the copying of currency that contains a special pattern.

Copyright issues

Photocopying material that is subject to copyright (such as books or scientific papers) is subject to restrictions in most countries. It is common practice, especially by students, as the cost of purchasing a book for the sake of one article or a few pages may be excessive. The principle of fair use (in the United States) or fair dealing (in other Berne Convention countries) allows this type of copying for research purposes.

In some countries, such as Canada, some universities pay royalties from each photocopy made at university copy machines and copy centers to copyright collectives out of the revenues from the photocopying and these collectives distribute these funds to various scholarly publishers. In the United States, photocopied compilations of articles, handouts, graphics, and other information called readers are often required texts for college classes. Either the instructor or the copy center is responsible for clearing copyright for every article in the reader and attribution information is included in the front of the reader.

Health Issues

Ultraviolet exposure due to the use of photocopiers is a health concern today. In response to this, “the sensitizing light source was filtered green to match the optimal sensitivity of the photoconductive surface. This filtering conveniently removed all ultraviolet” radiation.[2]

Forensic identification

Similar to forensic identification of typewriters, computer printers and copiers can be traced by imperfections in their output. The mechanical tolerances of the toner and paper feed mechanisms cause banding, which contain information about the individual device's mechanical properties. It is usually possible to identify the manufacturer and brand, but in some cases the individual printer can be identified from a set of known printers by comparing their outputs.[3]

In 2005, some high-quality color printers and copiers were demonstrated to steganographically embed their identification code in the printed pages as fine and almost invisible patterns of yellow dots. This reportedly had been done by top-of-the-line copiers for several years. The sources identify Xerox and Canon as firms engaging in this practice.[4] The U.S. government has been reported to have asked these companies to implement such a tracking scheme so that counterfeiting can be traced.

See also

Notes

  1. Georgi Nadjakov Institute of Solid State Physics, Photoelectrets, Bulgarian Academy of Sciences.
  2. Kitty Nicholson, Photocopier Hazards and a Conservation Case Study, The Book and Paper Group Annual 8 (1989). Retrieved January 15, 2008.
  3. Emil Venere, Printer forensics to aid homeland security, tracing counterfeiters, Purdue News Service, October 12, 2004; Jennifer Viegas, Computer Printers Can Catch Terrorists, Discovery News, October 18, 2004. Both links retrieved January 15, 2008.
  4. Jason Tuohey, Government Uses Color Laser Printer Technology to Track Documents, PC World, November 22, 2004; Wilbert de Vries, Dutch track counterfeits via printer serial numbers, Australian PC World, November 26, 2004. Retrieved January 15, 2008.

References
ISBN links support NWE through referral fees

  • Firpo, Patrick. 1978. Copyart: The First Complete Guide to the Copy Machine. London: Putnam Publishing Group. ISBN 0399900160.
  • Kuaimoku, Eric. 1993. Professional Photocopier Troubleshooting and Repair. New York: Tab Books. ISBN 0830643087.
  • Nyborg, Randell L. 1993. How to Service/Repair Your Copy Machine. Mannford, OK: University Publishing House. ISBN 1877767840.
  • Owen, David. 2004. Copies in Seconds: How a Lone Inventor and an Unknown Company Created the Biggest Communication Breakthrough since Gutenberg: Chester Carlson and the Birth of the Xerox Machine. New York: Simon & Schuster. ISBN 0743251172.
  • Schaffert, R. 1975. Electrophotography. St. Louis, MO: Focal Press. ISBN 0240507819.

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