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&lt;p&gt;&lt;b&gt;New page&lt;/b&gt;&lt;/p&gt;&lt;div&gt;{{Short description|Ion}}&lt;br /&gt;
{{For|the neutral chemical compound|chlorine monoxide}}&lt;br /&gt;
{{Chembox&lt;br /&gt;
| verifiedrevid = 442901462&lt;br /&gt;
| ImageFile1 = Hypochlorit-Ion.svg&lt;br /&gt;
| ImageSize1 = 100&lt;br /&gt;
| ImageAlt1 = The hypochlorite ion 2D&lt;br /&gt;
| ImageFile2 = Lewis structure of hypochlorite anion.gif&lt;br /&gt;
| ImageAlt2 = The Lewis structure for the hypochlorite anion&lt;br /&gt;
| ImageSize2 = 125&lt;br /&gt;
| ImageFile3 = Hypochlorite-3D-vdW.png&lt;br /&gt;
| ImageAlt3 = The hypochlorite ion 3D&lt;br /&gt;
| ImageSize3 = 100px&lt;br /&gt;
| SystematicName = chlorate(I)&lt;br /&gt;
| IUPACName = Hypochlorite&lt;br /&gt;
|Section1={{Chembox Identifiers&lt;br /&gt;
| StdInChI_Ref = {{stdinchicite|correct|chemspider}}&lt;br /&gt;
| StdInChI = 1S/ClO/c1-2/q-1&lt;br /&gt;
| StdInChIKey_Ref = {{stdinchicite|correct|chemspider}}&lt;br /&gt;
| StdInChIKey = WQYVRQLZKVEZGA-UHFFFAOYSA-N&lt;br /&gt;
| CASNo = 14380-61-1&lt;br /&gt;
| CASNo_Ref = {{cascite|correct|CAS}}&lt;br /&gt;
| UNII_Ref = {{fdacite|correct|FDA}}&lt;br /&gt;
| UNII = T5UM7HB19N&lt;br /&gt;
| PubChem = 61739&lt;br /&gt;
| ChemSpiderID = 55632&lt;br /&gt;
| ChemSpiderID_Ref = {{chemspidercite|correct|chemspider}}&lt;br /&gt;
| UNNumber = 3212&lt;br /&gt;
| ChEBI_Ref = {{ebicite|correct|EBI}}&lt;br /&gt;
| ChEBI = 29222&lt;br /&gt;
| SMILES = [O-]Cl&lt;br /&gt;
| InChI = 1/ClO/c1-2/q-1&lt;br /&gt;
| InChIKey = WQYVRQLZKVEZGA-UHFFFAOYAZ&lt;br /&gt;
| Gmelin = 682}}&lt;br /&gt;
|Section2={{Chembox Properties&lt;br /&gt;
| ConjugateAcid = [[Hypochlorous acid]]}}&lt;br /&gt;
}}&lt;br /&gt;
&lt;br /&gt;
In [[chemistry]], &amp;#039;&amp;#039;&amp;#039;hypochlorite&amp;#039;&amp;#039;&amp;#039; is an [[anion]] with the [[chemical formula]] ClO&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt;. It combines with a number of [[cation]]s to form hypochlorite salts. Common examples include [[sodium hypochlorite]] (household [[bleach]]) and [[calcium hypochlorite]] (a component of bleaching powder, swimming pool &amp;quot;chlorine&amp;quot;).&amp;lt;ref name=G&amp;amp;E&amp;gt;{{Greenwood&amp;amp;Earnshaw2nd}}&amp;lt;/ref&amp;gt;  The Cl-O distance in ClO&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; is 210 pm.&amp;lt;ref&amp;gt;{{cite journal|title=The probable model of the crystal structure of the twobase calcium hypochlorite&lt;br /&gt;
|last1=Aleksandrova|first1=M.M.|last2=Dmitriev|first2=G.A.|last3=Avojan |first3=R.L.|journal=Armyanskii Khimicheskii Zhurnal&lt;br /&gt;
|year=1968&lt;br /&gt;
|volume=21&lt;br /&gt;
|pages=380–386}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
The name can also refer to [[esters]] of hypochlorous acid, namely [[organic compound]]s with a ClO– [[moiety (chemistry)|group]] [[covalent bond|covalently]] bound to the rest of the molecule.  The principal example is [[tert-butyl hypochlorite]], which is a useful chlorinating agent.&amp;lt;ref name=mintz&amp;gt;{{cite journal|last=Mintz|first=M. J.|author2=C. Walling|title=t-Butyl hypochlorite|journal=Organic Syntheses|year=1969|volume=49|page=9|url=http://www.orgsyn.org/orgsyn/orgsyn/prepContent.asp?prep=cv5p0184|doi=10.15227/orgsyn.049.0009}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
Most hypochlorite salts are handled as [[aqueous solution]]s. Their primary applications are as bleaching, [[disinfection]], and [[water treatment]] agents.  They are also used in chemistry for [[Halogenation|chlorination]] and [[oxidation]] reactions.&lt;br /&gt;
&lt;br /&gt;
==Reactions==&lt;br /&gt;
&lt;br /&gt;
===Acid reaction===&lt;br /&gt;
Acidification of hypochlorites generates [[hypochlorous acid]], which exists in an equilibrium with chlorine. A high [[pH]] drives the reaction to the left:&lt;br /&gt;
&lt;br /&gt;
:2&amp;amp;nbsp;{{chem|H|+}} + {{chem|ClO|-}} + {{chem|Cl|-}} {{eqm}} {{chem|Cl|2}} + {{chem|H|2|O}}&lt;br /&gt;
&lt;br /&gt;
===Stability===&lt;br /&gt;
Hypochlorites are generally unstable and many compounds exist only in solution.   [[Lithium hypochlorite]] LiOCl, [[calcium hypochlorite]] Ca(OCl)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; and [[barium hypochlorite]] Ba(ClO)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; have been isolated as pure [[anhydrous]] compounds. All are solids. A few more can be produced as [[aqueous solution]]s.  In general the greater the dilution the greater their stability. It is not possible to determine trends for the [[alkaline earth metal]] salts, as many of them cannot be formed. Beryllium hypochlorite is unheard of. Pure magnesium hypochlorite cannot be prepared; however, solid Mg(OH)OCl is known.&amp;lt;ref name=&amp;quot;inorgchem&amp;quot; /&amp;gt;  Calcium hypochlorite is produced on an industrial scale and has good stability. Strontium hypochlorite, Sr(OCl)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;, is not well characterised and its stability has not yet been determined.&amp;lt;ref&amp;gt;{{cite book|last=Ropp|first=Richard|title=Encyclopedia of the Alkaline Earth Compounds|year=2012|publisher=Newnes|isbn=978-0444595539|page=76}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
Upon heating, hypochlorite degrades to a mixture of [[chloride]], [[oxygen]], and [[chlorate]]s:&lt;br /&gt;
&lt;br /&gt;
:2&amp;amp;nbsp;{{chem|ClO|-}} → 2&amp;amp;nbsp;{{chem|Cl|-}} + {{chem|O|2}}&lt;br /&gt;
:3&amp;amp;nbsp;{{chem|ClO|-}} → 2&amp;amp;nbsp;{{chem|Cl|-}} + {{chem|ClO|3|-}}&lt;br /&gt;
&lt;br /&gt;
This reaction is exothermic and in the case of concentrated hypochlorites, such as LiOCl and Ca(OCl)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;, can lead to a dangerous [[thermal runaway]] and potentially explosions.&amp;lt;ref&amp;gt;{{cite book|last=Ropp|first=Richard C.|title=Encyclopedia of the alkaline earth compounds|publisher=Elsevier Science|location=Oxford|isbn=978-0444595539|page=75|date=2012-12-31}}&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;{{cite journal|last=Clancey|first=V.J.|title=Fire hazards of calcium hypochlorite|journal=Journal of Hazardous Materials|year=1975|volume=1|issue=1|pages=83–94|doi=10.1016/0304-3894(75)85015-1}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
The [[alkali metal]] hypochlorites decrease in stability down the [[Group (periodic table)|group]]. Anhydrous lithium hypochlorite is stable at room temperature; however, [[sodium hypochlorite]] has not been prepared drier than the pentahydrate (NaOCl·(H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O)&amp;lt;sub&amp;gt;5&amp;lt;/sub&amp;gt;). This is unstable above 0&amp;amp;nbsp;°C;&amp;lt;ref&amp;gt;{{cite book|last=Brauer|first=G.|title=Handbook of Preparative Inorganic Chemistry; Vol. 1|year=1963|publisher=Academic Press|page=309|edition=2nd}}&amp;lt;/ref&amp;gt; although the more dilute solutions encountered as household bleach possess better stability. Potassium hypochlorite (KOCl) is known only in solution.&amp;lt;ref name=&amp;quot;inorgchem&amp;quot;&amp;gt;{{cite book|last=Aylett|first=founded by A.F. Holleman ; continued by Egon Wiberg ; translated by Mary Eagleson, William Brewer ; revised by Bernhard J.|title=Inorganic chemistry|year=2001|publisher=Academic Press, W. de Gruyter.|location=San Diego, Calif. : Berlin|isbn=978-0123526519|page=444|edition=1st English ed., [edited] by Nils Wiberg.}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Lanthanide]] hypochlorites are also unstable; however, they have been reported as being more stable in their anhydrous forms than in the presence of water.&amp;lt;ref&amp;gt;{{cite journal|last=Vickery|first=R. C.|title=Some reactions of cerium and other rare earths with chlorine and hypochlorite|journal=Journal of the Society of Chemical Industry|date=1 April 1950|volume=69|issue=4|pages=122–125|doi=10.1002/jctb.5000690411}}&amp;lt;/ref&amp;gt; Hypochlorite has been used to oxidise [[cerium]] from its +3 to +4 [[oxidation state]].&amp;lt;ref name=cerium&amp;gt;{{cite book|last=V. R. Sastri |display-authors=etal |title=Modern Aspects of Rare Earths and their Complexes.|year=2003|publisher=Elsevier|location=Burlington|isbn=978-0080536682|page=38|edition=1st}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
[[Hypochlorous acid]] itself is not stable in isolation as it decomposes to form [[chlorine]].  Its decomposition also results in some form of oxygen.&lt;br /&gt;
&lt;br /&gt;
===Reactions with ammonia===&lt;br /&gt;
Hypochlorites react with ammonia first giving [[monochloramine]] ({{chem|NH|2|Cl}}), then [[dichloramine]] ({{chem|NHCl|2}}), and finally [[nitrogen trichloride]] ({{chem|NCl|3}}).&amp;lt;ref name=G&amp;amp;E/&amp;gt;&lt;br /&gt;
&lt;br /&gt;
: {{chem|NH|3}} + {{chem|ClO|-}} → {{chem|HO|-}} + {{chem|NH|2}}Cl&lt;br /&gt;
&lt;br /&gt;
: {{chem|NH|2}}Cl + {{chem|ClO|-}} → {{chem|HO|-}} + {{chem|NHCl|2}}&lt;br /&gt;
&lt;br /&gt;
: {{chem|NHCl|2}} + {{chem|ClO|-}} → {{chem|HO|-}} + {{chem|NCl|3}}&lt;br /&gt;
&lt;br /&gt;
==Preparation==&lt;br /&gt;
&lt;br /&gt;
===Hypochlorite salts===&lt;br /&gt;
Hypochlorite salts  formed by the reaction between [[chlorine]] and alkali and alkaline earth metal [[hydroxide]]s. The reaction is performed at close to room temperature to suppress the formation of [[chlorate]]s. This process is widely used for the industrial production of [[sodium hypochlorite]] (NaClO) and [[calcium hypochlorite]] (Ca(ClO)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;).&lt;br /&gt;
:Cl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; + 2&amp;amp;nbsp;NaOH  → NaCl + NaClO + H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O&lt;br /&gt;
&lt;br /&gt;
:2&amp;amp;nbsp;Cl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; + 2&amp;amp;nbsp;Ca(OH)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; →  CaCl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; + Ca(ClO)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; + 2&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O&lt;br /&gt;
&lt;br /&gt;
Large amounts of  sodium hypochlorite are also produced [[electrochemical]]ly via an un-separated [[chloralkali process]]. In this process brine is electrolyzed to form {{chem|Cl|2}} which dissociates in water to form hypochlorite. This reaction must be conducted in non-acidic conditions to prevent release of chlorine:&lt;br /&gt;
:2&amp;amp;nbsp;{{chem|Cl|-}} → {{chem|Cl|2}} + 2&amp;amp;nbsp;e&amp;lt;sup&amp;gt;&amp;amp;minus;&amp;lt;/sup&amp;gt;&lt;br /&gt;
&lt;br /&gt;
: {{chem|Cl|2}} + {{chem|H|2|O}} {{eqm}} {{chem|H|Cl|O}} + {{chem|Cl|-}} + {{chem|H|+}}&lt;br /&gt;
&lt;br /&gt;
Some hypochlorites may also be obtained by a [[salt metathesis reaction]] between calcium hypochlorite and various metal [[sulfate]]s. This reaction is performed in water and relies on the formation of insoluble [[calcium sulfate]], which will [[precipitate]] out of solution, driving the reaction to completion.&lt;br /&gt;
: Ca(ClO)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; + MSO&amp;lt;sub&amp;gt;4&amp;lt;/sub&amp;gt; → M(ClO)&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt; + CaSO&amp;lt;sub&amp;gt;4&amp;lt;/sub&amp;gt;&lt;br /&gt;
&lt;br /&gt;
===Organic hypochlorites===&lt;br /&gt;
[[image:TBuOCl.svg|thumb|162px|left|[[Tert-Butyl hypochlorite|&amp;#039;&amp;#039;tert&amp;#039;&amp;#039;-butyl hypochlorite]] is a rare example of a stable organic hypochlorite.&amp;lt;ref&amp;gt;{{cite book|doi=10.1002/047084289X.rb388.pub2|chapter=t-Butyl Hypochlorite|title=Encyclopedia of Reagents for Organic Synthesis|year=2006|last1=Simpkins|first1=Nigel S.|last2=Cha|first2=Jin K.|isbn=0471936235}}&amp;lt;/ref&amp;gt;]]&lt;br /&gt;
Hypochlorite esters are in general formed from the corresponding [[Alcohol (chemistry)|alcohol]]s, by treatment with any of a number of reagents (e.g. [[chlorine]], [[hypochlorous acid]], [[dichlorine monoxide]] and various acidified hypochlorite salts).&amp;lt;ref name=mintz/&amp;gt;&lt;br /&gt;
&lt;br /&gt;
==Biochemistry==&lt;br /&gt;
===Biosynthesis of organochlorine compounds===&lt;br /&gt;
[[Chloroperoxidase]]s are [[enzyme]]s that catalyzes the [[chlorination reaction|chlorination]] of organic compounds.  This enzyme combines the inorganic substrates [[chloride]] and [[hydrogen peroxide]] to produce the equivalent of Cl&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt;, which replaces a proton in hydrocarbon substrate:&lt;br /&gt;
:R-H  +  Cl&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt;  +  H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;  +  H&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt;  →   R-Cl  +  2 H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O&lt;br /&gt;
The source of &amp;quot;Cl&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt;&amp;quot; is hypochlorous acid (HOCl).&amp;lt;ref&amp;gt;{{cite journal|last1=Hofrichter|first1=M.|last2=Ullrich|first2=R.|last3=Pecyna|first3=Marek J.|first4=Christiane |last4= Liers|first5=Taina |last5=Lundell|journal=Appl Microbiol Biotechnol|year=2010|volume=87|issue=3|doi=10.1007/s00253-010-2633-0|pmid=20495915| pages= 871–897 | title=New and classic families of secreted fungal heme peroxidases|s2cid=24417282}}&amp;lt;/ref&amp;gt; Many organochlorine compounds are [[biosynthesis|biosynthesized]] in this way.&lt;br /&gt;
&lt;br /&gt;
===Immune response===&lt;br /&gt;
In response to infection, the human immune system generates minute quantities of hypochlorite within special [[white blood cell]]s, called [[neutrophil granulocyte]]s.&amp;lt;ref&amp;gt;{{cite journal|doi=10.1007/s00726-012-1361-4|pmid=22810731|pmc=3894431|title=Taurine and inflammatory diseases|journal=Amino Acids|volume=46|issue=1|pages=7–20|year=2014|last1=Marcinkiewicz|first1=Janusz|last2=Kontny|first2=Ewa}}&amp;lt;/ref&amp;gt;   These granulocytes engulf viruses and bacteria in an intracellular vacuole called the [[phagosome]], where they are digested.&lt;br /&gt;
&lt;br /&gt;
Part of the digestion mechanism involves an enzyme-mediated [[respiratory burst]], which produces reactive oxygen-derived compounds, including [[superoxide]] (which is produced by [[NADPH oxidase]]). Superoxide decays to oxygen and [[hydrogen peroxide]], which is used in a [[myeloperoxidase]]-catalysed reaction to convert [[chloride]] to hypochlorite.&amp;lt;ref&amp;gt;{{cite journal|author1=Harrison, J. E. |author2=J. Schultz|year = 1976|title = Studies on the chlorinating activity of myeloperoxidase|journal = Journal of Biological Chemistry|volume = 251|issue = 5|pages = 1371–1374|doi=10.1016/S0021-9258(17)33749-3|pmid = 176150|doi-access = free}}&amp;lt;/ref&amp;gt;&amp;lt;ref name=ref93&amp;gt;{{cite journal|author = Thomas, E. L.|year = 1979|title = Myeloperoxidase, hydrogen peroxide, chloride antimicrobial system: Nitrogen-chlorine derivatives of bacterial components in bactericidal action against &amp;#039;&amp;#039;Escherichia coli&amp;#039;&amp;#039;|journal = Infect. Immun.|volume = 23|issue = 2|pages = 522–531|pmid = 217834|pmc = 414195|doi = 10.1128/IAI.23.2.522-531.1979}}&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;{{cite journal|last1=Albrich|first1=JM|last2=McCarthy|first2=CA|last3=Hurst|first3=JK|title=Biological reactivity of hypochlorous acid: implications for microbicidal mechanisms of leukocyte myeloperoxidase.|journal=Proceedings of the National Academy of Sciences of the United States of America|date=January 1981|volume=78|issue=1|pages=210–4|pmid=6264434|doi=10.1073/pnas.78.1.210|pmc=319021|bibcode=1981PNAS...78..210A|doi-access=free}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
Low concentrations of hypochlorite were also found to interact with a microbe&amp;#039;s [[heat shock protein]]s, stimulating their role as [[Heat shock protein#Role as chaperone|intra-cellular chaperone]] and causing the bacteria to form into clumps (much like an egg that has been boiled) that will eventually die off.&amp;lt;ref name=Winter&amp;gt;{{cite journal&lt;br /&gt;
 | last = Jakob&lt;br /&gt;
 | first = U.&lt;br /&gt;
 |author2=J. Winter |author3=M. Ilbert |author4=P.C.F. Graf |author5=D. Özcelik&lt;br /&gt;
 | title = Bleach Activates A Redox-Regulated Chaperone by Oxidative Protein Unfolding&lt;br /&gt;
 | journal = [[Cell (journal)|Cell]]&lt;br /&gt;
 | volume = 135&lt;br /&gt;
 | issue = 4&lt;br /&gt;
 | pages = 691–701&lt;br /&gt;
 | publisher = Elsevier&lt;br /&gt;
 | date = 14 November 2008&lt;br /&gt;
 | url= | doi =10.1016/j.cell.2008.09.024&lt;br /&gt;
 | pmid = 19013278&lt;br /&gt;
 | pmc = 2606091 }}&amp;lt;/ref&amp;gt;  The same study found that low (micromolar) hypochlorite levels induce &amp;#039;&amp;#039;[[Escherichia coli|E. coli]]&amp;#039;&amp;#039; and &amp;#039;&amp;#039;[[Vibrio cholerae]]&amp;#039;&amp;#039; to activate a protective mechanism, although its implications were not clear.&amp;lt;ref name=Winter/&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In some cases, the base acidity of hypochlorite compromises a bacterium&amp;#039;s [[lipid membrane]], a reaction similar to popping a balloon.{{citation needed|date=June 2018}}&lt;br /&gt;
&lt;br /&gt;
==Industrial and domestic uses==&lt;br /&gt;
Hypochlorites, especially of [[sodium hypochlorite|sodium]] (&amp;quot;liquid bleach&amp;quot;, &amp;quot;Javel water&amp;quot;) and [[calcium hypochlorite|calcium]] (&amp;quot;bleaching powder&amp;quot;) are widely used, [[industrial chemicals|industrially]] and [[household chemicals|domestically]], to whiten clothes, lighten hair color and remove [[stain]]s.  They were the first commercial bleaching products, developed soon after that property was discovered in 1785 by French chemist [[Claude Berthollet]].&lt;br /&gt;
&lt;br /&gt;
Hypochlorites are also widely used as broad spectrum [[disinfectant]]s and [[deodorizer]]s.  That application started soon after [[French people|French]] chemist [[Antoine Germain Labarraque|Labarraque]] discovered those properties, around 1820 (still before [[Louis Pasteur|Pasteur]] formulated his [[germ theory]] of disease).&lt;br /&gt;
&lt;br /&gt;
==Laboratory uses==&lt;br /&gt;
&lt;br /&gt;
===As oxidizing agents===&lt;br /&gt;
Hypochlorite is the strongest oxidizing agent of the chlorine oxyanions. This can be seen by comparing the standard [[half cell]] potentials across the series; the data also shows that the chlorine oxyanions are stronger oxidizers in acidic conditions.&amp;lt;ref&amp;gt;{{Cotton&amp;amp;Wilkinson5th|page=564}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
{| class=&amp;quot;wikitable&amp;quot;&lt;br /&gt;
|-&lt;br /&gt;
! Ion !! Acidic reaction !! &amp;#039;&amp;#039;E&amp;#039;&amp;#039;° (V) !! Neutral/basic reaction !! &amp;#039;&amp;#039;E&amp;#039;&amp;#039;° (V)&lt;br /&gt;
|-&lt;br /&gt;
| align=&amp;quot;center&amp;quot; | &amp;#039;&amp;#039;&amp;#039;Hypochlorite&amp;#039;&amp;#039;&amp;#039; || H&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt; + HOCl + e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → {{1/2}}&amp;amp;nbsp;Cl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;(&amp;#039;&amp;#039;g&amp;#039;&amp;#039;) + H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O || align=&amp;quot;center&amp;quot; |1.63 || ClO&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; + H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O + 2&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → Cl&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; + 2OH&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; || align=&amp;quot;center&amp;quot; |0.89&lt;br /&gt;
|-&lt;br /&gt;
| align=&amp;quot;center&amp;quot; | [[Chlorite]] || 3&amp;amp;nbsp;H&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt; + HOClO + 3&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → {{1/2}}&amp;amp;nbsp;Cl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;(&amp;#039;&amp;#039;g&amp;#039;&amp;#039;) + 2&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O || align=&amp;quot;center&amp;quot; |1.64||{{chem|ClO|2|−}} + 2&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O + 4&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → Cl&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; + 4&amp;amp;nbsp;OH&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; || align=&amp;quot;center&amp;quot; | 0.78&lt;br /&gt;
|-&lt;br /&gt;
| align=&amp;quot;center&amp;quot; | [[Chlorate]] || 6&amp;amp;nbsp;H&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt; + {{chem|ClO|3|−}} + 5&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → {{1/2}}&amp;amp;nbsp;Cl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;(&amp;#039;&amp;#039;g&amp;#039;&amp;#039;) + 3&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O ||align=&amp;quot;center&amp;quot; |1.47||{{chem|ClO|3|−}} + 3&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O + 6&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → Cl&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; + 6&amp;amp;nbsp;OH&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; || align=&amp;quot;center&amp;quot; |0.63&lt;br /&gt;
|-&lt;br /&gt;
| align=&amp;quot;center&amp;quot; | [[Perchlorate]] ||8&amp;amp;nbsp;H&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt; + {{chem|ClO|4|−}} + 7&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → {{1/2}}&amp;amp;nbsp;Cl&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;(&amp;#039;&amp;#039;g&amp;#039;&amp;#039;) + 4&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O ||align=&amp;quot;center&amp;quot; |1.42||{{chem|ClO|4|−}} + 4&amp;amp;nbsp;H&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;O + 8&amp;amp;nbsp;e&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; → Cl&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; + 8&amp;amp;nbsp;OH&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt; || align=&amp;quot;center&amp;quot; |0.56&lt;br /&gt;
|}&lt;br /&gt;
&lt;br /&gt;
Hypochlorite is a sufficiently strong oxidiser to convert Mn(III) to Mn(V) during the [[Jacobsen epoxidation]] reaction and to convert {{chem|Ce|3+}} to {{chem|Ce|4+}}.&amp;lt;ref name=cerium /&amp;gt;&lt;br /&gt;
This oxidising power is what makes them effective bleaching agents and disinfectants.&lt;br /&gt;
&lt;br /&gt;
In [[organic chemistry]], hypochlorites can be used to oxidise [[primary alcohol]]s to [[carboxylic acid]]s.&amp;lt;ref&amp;gt;{{cite book|last=Warren|first=Jonathan Clayden, Nick Greeves, Stuart|title=Organic chemistry|publisher=Oxford University Press|location=Oxford|isbn=978-0-19-927029-3|page=195|edition=2nd|date=2012-03-15}}&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
===As chlorinating agents===&lt;br /&gt;
Hypochlorite salts can also serve as [[Chlorination reaction|chlorinating agents]].  For example, they convert [[phenol]]s to chlorophenols.  [[Calcium hypochlorite]] converts [[piperidine]] to [[N-Chloropiperidine|&amp;#039;&amp;#039;N&amp;#039;&amp;#039;-chloropiperidine]].&lt;br /&gt;
&lt;br /&gt;
==Related oxyanions==&lt;br /&gt;
Chlorine can be the nucleus of [[oxyanion]]s with [[oxidation state]]s of −1, +1, +3, +5, or +7. (The element can also assume oxidation state of +4 is seen in the neutral compound [[chlorine dioxide]] ClO&amp;lt;sub&amp;gt;2&amp;lt;/sub&amp;gt;).&lt;br /&gt;
&lt;br /&gt;
{| class=&amp;quot;wikitable&amp;quot;&lt;br /&gt;
|-&lt;br /&gt;
! Chlorine oxidation state&lt;br /&gt;
| −1&lt;br /&gt;
| +1&lt;br /&gt;
| +3&lt;br /&gt;
| +5&lt;br /&gt;
| +7&lt;br /&gt;
|-&lt;br /&gt;
! Name&lt;br /&gt;
| [[chloride]]&lt;br /&gt;
| &amp;#039;&amp;#039;&amp;#039;hypochlorite&amp;#039;&amp;#039;&amp;#039;&lt;br /&gt;
| [[chlorite]]&lt;br /&gt;
| [[chlorate]]&lt;br /&gt;
| [[perchlorate]]&lt;br /&gt;
|-&lt;br /&gt;
! Formula&lt;br /&gt;
| Cl&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt;&lt;br /&gt;
| ClO&amp;lt;sup&amp;gt;−&amp;lt;/sup&amp;gt;&lt;br /&gt;
| {{chem|ClO|2|−}}&lt;br /&gt;
| {{chem|ClO|3|−}}&lt;br /&gt;
| {{chem|ClO|4|−}}&lt;br /&gt;
|-&lt;br /&gt;
! Structure&lt;br /&gt;
| [[File:Chloride-ion-3D-vdW.png|50px|alt=A green sphere|The chloride ion]]&lt;br /&gt;
| [[File:Hypochlorite-3D-vdW.png|50px|The hypochlorite ion]]&lt;br /&gt;
| [[File:Chlorite-3D-vdW.png|50px|The chlorite ion]]&lt;br /&gt;
| [[File:Chlorate-3D-vdW.png|50px|The chlorate ion]]&lt;br /&gt;
| [[File:Perchlorate-3D-vdW.png|50px|The perchlorate ion]]&lt;br /&gt;
|}&lt;br /&gt;
&lt;br /&gt;
==See also==&lt;br /&gt;
* [[Chlorine oxide]]&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
{{reflist}}&lt;br /&gt;
&lt;br /&gt;
[[Category:Hypochlorites]]&lt;/div&gt;</summary>
		<author><name>&gt;Lennart97</name></author>
	</entry>
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