Azide
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In chemistry, azide (/ˈeɪzaɪd/, Script error: No such module "Respell".) is a linear, polyatomic anion with the formula Page Module:Chem2/styles.css has no content.N−3 and structure Page Module:Chem2/styles.css has no content.−N=N+=N−. It is the conjugate base of hydrazoic acid Page Module:Chem2/styles.css has no content.HN3. Organic azides are organic compounds with the formula Page Module:Chem2/styles.css has no content.RN3, containing the azide functional group.[1] The dominant application of azides is as a propellant in air bags.[1]
Preparation
Sodium azide is made industrially by the reaction of nitrous oxide, Page Module:Chem2/styles.css has no content.N2O with sodium amide Page Module:Chem2/styles.css has no content.NaNH2 in liquid ammonia as solvent:[2]
- Page Module:Chem2/styles.css has no content.N2O + 2 NaNH2 → NaN3 + NaOH + NH3
Many inorganic azides can be prepared directly or indirectly from sodium azide. For example, lead azide, used in detonators, may be prepared from the metathesis reaction between lead nitrate and sodium azide. An alternative route is direct reaction of the metal with silver azide dissolved in liquid ammonia.[3] Some azides are produced by treating the carbonate salts with hydrazoic acid.
Bonding
Azide has a linear structure and is isoelectronic with carbon dioxide Page Module:Chem2/styles.css has no content.CO2, cyanate Page Module:Chem2/styles.css has no content.OCN−, nitrous oxide Page Module:Chem2/styles.css has no content.N2O, nitronium ion Page Module:Chem2/styles.css has no content.NO+2, molecular beryllium fluoride Page Module:Chem2/styles.css has no content.BeF2 and cyanogen fluoride FCN. Per valence bond theory, azide can be described by several resonance structures; an important one being Page Module:Chem2/styles.css has no content.N−=N+=N−. The analogous neutral trinitrogen molecule can also have a linear structure, but also a cyclic isomer is known.
Reactions
Azide salts can decompose with release of nitrogen gas. The decomposition temperatures of the alkali metal azides are: Page Module:Chem2/styles.css has no content.NaN3 (275 °C), Page Module:Chem2/styles.css has no content.KN3 (355 °C), Page Module:Chem2/styles.css has no content.RbN3 (395 °C), and Page Module:Chem2/styles.css has no content.CsN3 (390 °C). This method is used to produce ultrapure alkali metals:[4]
- Page Module:Chem2/styles.css has no content.2 MN3 Page Module:Chem2/styles.css has no content.2 M + 3 N2
Protonation of azide salts gives toxic and explosive hydrazoic acid in the presence of strong acids:
- Page Module:Chem2/styles.css has no content.H+ + N−3 → HN3
Azide as a ligand forms numerous transition metal azide complexes. Some such compounds are shock sensitive.
Many inorganic covalent azides (e.g., fluorine azide, chlorine azide, bromine azide, iodine azide, silicon tetraazide) have been described.[5]
The azide anion behaves as a nucleophile; it undergoes nucleophilic substitution for both aliphatic and aromatic systems. It reacts with epoxides, causing a ring-opening; it undergoes Michael-like conjugate addition to 1,4-unsaturated carbonyl compounds.[1]
Azides can be used as precursors of the metal nitrido complexes by being induced to release Page Module:Chem2/styles.css has no content.N2, generating a metal complex in unusual oxidation states (see high-valent iron).
Redox behaviour and trend to disproportionation
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Azides have an ambivalent redox behavior: they are both oxidizing and reducing, as they are easily subject to disproportionation, as illustrated by the Frost diagram of nitrogen. This diagram shows the significant energetic instability of the hydrazoic acid Page Module:Chem2/styles.css has no content.HN3 (or the azide ion) surrounded by two much more stable species, the ammonium ion Page Module:Chem2/styles.css has no content.NH+4 on the left and the molecular nitrogen Page Module:Chem2/styles.css has no content.N2 on the right. As seen on the Frost diagram the disproportionation reaction lowers ∆G, the Gibbs free energy of the system (−∆G/F = zE, where F is the Faraday constant, z the number of electrons exchanged in the redox reaction, and E the standard electrode potential). By minimizing the energy in the system, the disproportionation reaction increases its thermodynamical stability.
Destruction by oxidation by nitrite
Azides decompose with nitrite compounds such as sodium nitrite. Each elementary redox reaction is also a comproportionation reaction because two different N-species (Page Module:Chem2/styles.css has no content.N−3 and NO−2) converge to a same one (respectively Page Module:Chem2/styles.css has no content.N2, N2O and NO) and is favored when the solution is acidified. This is a method of destroying residual azides, prior to disposal.[6] In the process, nitrogen gas (Page Module:Chem2/styles.css has no content.N2) and nitrogen oxides (Page Module:Chem2/styles.css has no content.N2O and NO) are formed:
- Page Module:Chem2/styles.css has no content.3 N−3 + NO−2 + 2 H2O → 5 N2 + 4 OH−
- Page Module:Chem2/styles.css has no content.2 N−3 + 4 NO−2 + 3 H2O → 5 N2O + 6 OH−
- Page Module:Chem2/styles.css has no content.N−3 + 7 NO−2 + 4 H2O → 10 NO + 8 OH−
(The parenthetical notation below marks the oxidation state of the nitrogen in each species.)
Azide (−Page Template:Sfrac/styles.css has no content.1/3) (the reductant, electron donor) is oxidized in Page Module:Chem2/styles.css has no content.N2 (0), nitrous oxide (Page Module:Chem2/styles.css has no content.N2O) (+1), or nitric oxide (NO) (+2) while nitrite (+3) (the oxidant, electron acceptor) is simultaneously reduced to the same corresponding species in each elementary redox reaction considered here above. The respective stability of the reaction products of these three comproportionation redox reactions is in the following order: Page Module:Chem2/styles.css has no content.N2 > N2O > NO, as can be verified in the Frost diagram for nitrogen.
Applications
In 2005, about 251 tons of azide-containing compounds were annually produced in the world, the main product being sodium azide.[7]
Primary explosives and propellants
Sodium azide Page Module:Chem2/styles.css has no content.NaN3 is the propellant in automobile airbags. It decomposes on heating to give nitrogen gas, which is used to quickly expand the air bag:[7]
- Page Module:Chem2/styles.css has no content.2 NaN3 → 2 Na + 3 N2
Heavy metal azides, such as lead azide, Page Module:Chem2/styles.css has no content.Pb(N3)2, are shock-sensitive detonators which violently decompose to the corresponding metal and nitrogen, for example:[8]
- Page Module:Chem2/styles.css has no content.Pb(N3)2 → Pb + 3 N2
Silver azide Page Module:Chem2/styles.css has no content.AgN3 and barium azide Page Module:Chem2/styles.css has no content.Ba(N3)2 are used similarly.
Some organic azides are potential rocket propellants, an example being 2-dimethylaminoethylazide (DMAZ) Page Module:Chem2/styles.css has no content.(CH3)2NCH2CH2N3.
Microbial inhibitor and undesirable side effects
Sodium azide is commonly used in the laboratory as a bacteriostatic agent to avoid microbial proliferation in abiotic control experiments in which it is important to avoid microbial activity. However, it has the disadvantage to be prone to trigger unexpected and undesirable side reactions that can jeopardize the experimental results. Indeed, the azide anion is a nucleophile and a redox-active species. Being prone to disproportionation, it can behave both as an oxidizing and as a reducing agent. Therefore, it is susceptible to interfere in an unpredictable way with many substances.[9][10][11] For example, the azide anion can oxidize pyrite (Page Module:Chem2/styles.css has no content.FeS2) with the formation of thiosulfate (Page Module:Chem2/styles.css has no content.S2O2−3), or reduce quinone into hydroquinone.[12] It can also reduce nitrite Page Module:Chem2/styles.css has no content.NO−2 into nitrous oxide Page Module:Chem2/styles.css has no content.N2O, and Page Module:Chem2/styles.css has no content.Fe2+ into Page Module:Chem2/styles.css has no content.Fe0 (zerovalent iron, ZVI).[12] Azide can also enhance the Template:N2O emission in soil. A proposed explanation is the stimulation of the denitrification processes because of the azide’s role in the synthesis of denitrifying enzymes.[13] Moreover, azide also affects the absorbance and fluorescence optical properties of the dissolved organic matter (DOM) from soils.[14] Many other interferences are reported in the literature for biochemical and biological analyses and they should be systematically identified and first rigorously tested in the laboratory before to use azide as microbial inhibitor for a given application.
Purification of molten sodium
Sodium azide Page Module:Chem2/styles.css has no content.NaN3 is used to purify metallic sodium in laboratories handling molten sodium used as a coolant for fast-neutron reactors.[15]
As hydrazoic acid, the protonated form of the azide anion, has a very low reduction potential (E°red = −3.09 V), and is even a stronger reductant than lithium (E°red = −3.04 V), dry solid sodium azide can be added to molten metallic sodium (E°red = −2.71 V) under strict anoxic conditions (e.g., in a special anaerobic glovebox with very low residual Template:O2 (< 1 ppm vol.) to reduce Page Module:Chem2/styles.css has no content.Na+ impurities still present into the sodium bath. The reaction residue is only gaseous Page Module:Chem2/styles.css has no content.N2.
As E°ox = −E°red, it gives the following series of oxidation reactions when the redox couples are presented as reductants:
- Page Module:Chem2/styles.css has no content.2 HN3 ⇌ 3 N2(g) + 2 H+ + 2 e− (E°ox = +3.09 V)
- Page Module:Chem2/styles.css has no content.Li ⇌ Li+ + e− (E°ox = +3.04 V)
- Page Module:Chem2/styles.css has no content.Na ⇌ Na+ + e− (E°ox = +2.71 V)
Click chemistry
Template:Main article The azide functional group is commonly utilized in click chemistry through copper(I)-catalyzed azide-alkyne cycloaddition (CuAAC) reactions, where copper(I) catalyzes the cycloaddition of an organoazide to a terminal alkyne, forming a triazole.[16][17][18]
Photoaffinity labeling and optotargeting
The azide functional group is decomposed upon illumination and is converted into molecular nitrogen (N2) and a reactive radical such as nitrene therefore it is also used to render organic molecules photoactivable. If a bioactive molecule is modified this way, the radical generated from it by light can be used for photoaffinity labeling [19], and for optotargeting which is based on the phenomenon that the eye (especially the retina) is exposed to more light than other internal organs of the body [20]
Other uses
A very damaging and illegal usage of sodium azide is its diversion by poachers as a substitute of sodium cyanide to poison some animal species by blocking the electron transport chain in the cellular respiration process.
Safety
Azides are explosophores[9][21][22] and respiratory poisons.[9][23] Sodium azide (Page Module:Chem2/styles.css has no content.NaN3) is nearly as toxic as sodium cyanide (NaCN) (with an oral LD50 of 27 mg/kg in rats) and can be absorbed through the skin. When sodium azide enters in contact with an acid, it produces volatile hydrazoic acid (Page Module:Chem2/styles.css has no content.HN3), as toxic and volatile as hydrogen cyanide (HCN). When accidentally present in the air of a laboratory at low concentration, it can cause irritations such as nasal stuffiness, or suffocation and death at elevated concentrations.[24]
Heavy metal azides, such as lead azide (Page Module:Chem2/styles.css has no content.Pb(N3)2) are primary high explosives detonable when heated or shaken. Heavy-metal azides are formed when solutions of sodium azide or Page Module:Chem2/styles.css has no content.HN3 vapors come into contact with heavy metals (Pb, Hg…) or their salts. Heavy-metal azides can accumulate under certain circumstances, for example, in metal pipelines and on the metal components of diverse equipment (rotary evaporators, freezedrying equipment, cooling traps, water baths, waste pipes), and thus lead to violent explosions.[9]
See also
- Main group azido compounds
- Pentazenium
- Pentazolate (cyclo-Page Module:Chem2/styles.css has no content.N−5)
References
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- ^ Page Module:Citation/CS1/styles.css has no content.Greenwood, Norman N.; Earnshaw, Alan (1997). Chemistry of the Elements (2nd ed.). Butterworth-Heinemann. p. 433. doi:10.1016/C2009-0-30414-6. ISBN 978-0-08-037941-8.
- ^ Page Module:Citation/CS1/styles.css has no content.Müller, Thomas G.; Karau, Friedrich; Schnick, Wolfgang; Kraus, Florian (2014). "A New Route to Metal Azides". Angewandte Chemie. 53 (50): 13695–13697. Bibcode:2014ACIE...5313695M. doi:10.1002/anie.201404561. PMID 24924913.
- ^ Page Module:Citation/CS1/styles.css has no content.Dönges, E. (1963). "Alkali Metals". In Brauer, G. (ed.). Handbook of Preparative Inorganic Chemistry. Vol. 1 (2nd ed.). NY: Academic Press. p. 475.
- ^ Page Module:Citation/CS1/styles.css has no content.I. C. Tornieporth-Oetting & T. M. Klapötke (1995). "Covalent Inorganic Azides". Angewandte Chemie International Edition in English. 34 (5): 511–520. doi:10.1002/anie.199505111.
- ^ Page Module:Citation/CS1/styles.css has no content.Committee on Prudent Practices for Handling, Storage, and Disposal of Chemicals in Laboratories, Board on Chemical Sciences and Technology, Commission on Physical Sciences, Mathematics, and Applications, National Research Council (1995). Prudent practices in the laboratory: handling and disposal of chemicals. Washington, D.C.: National Academy Press. ISBN 0-309-05229-7.
{{cite book}}: CS1 maint: multiple names: authors list (link) - ^ a b Page Module:Citation/CS1/styles.css has no content.Jobelius, Horst H.; Scharff, Hans-Dieter (2005). "Hydrazoic Acid and Azides". Ullmann's Encyclopedia of Industrial Chemistry. Weinheim: Wiley-VCH. doi:10.1002/14356007.a13_193. ISBN 3527306730.
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- ^ a b c d Page Module:Citation/CS1/styles.css has no content.Rozycki, Michael; Bartha, Richard (1981). "Problems associated with the use of azide as an inhibitor of microbial activity in soil". Applied and Environmental Microbiology. 41 (3): 833–836. Bibcode:1981ApEnM..41..833R. doi:10.1128/aem.41.3.833-836.1981. ISSN 0099-2240. PMC 243784. PMID 16345743.
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- ^ a b Page Module:Citation/CS1/styles.css has no content.Hendrix, Katrien; Bleyen, Nele; Mennecart, Thierry; Bruggeman, Christophe; Valcke, Elie (2019). "Sodium azide used as microbial inhibitor caused unwanted by-products in anaerobic geochemical studies". Applied Geochemistry. 107: 120–130. Bibcode:2019ApGC..107..120H. doi:10.1016/j.apgeochem.2019.05.014. ISSN 0883-2927.
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{{cite journal}}: CS1 maint: multiple names: authors list (link) - ^ Template:Cite bioRxiv
- ^ Page Module:Citation/CS1/styles.css has no content.Treitler, Daniel S.; Leung, Simon (2 September 2022). "How Dangerous is too Dangerous? A Perspective on Azide Chemistry". The Journal of Organic Chemistry. 87 (17): 11293–11295. doi:10.1021/acs.joc.2c01402. ISSN 0022-3263. PMID 36052475. S2CID 252009657. Retrieved 18 September 2022.
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External links
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