Pentazenium

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Pentazenium
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Names
Other names
Pentanitrogen cation
Identifiers
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3D model (JSmol)
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  • InChI=1S/N5/c1-3-5-4-2/q+1 N
    Key: UXGCMSPHSBEHRM-UHFFFAOYSA-N N
  • N#[N+][N-][N+]#N
Properties
Page Module:Chem2/styles.css has no content.N+5
Molar mass 70.0335 g/mol
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).

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In chemistry, the pentazenium cation (also known as pentanitrogen) is a positively-charged polyatomic ion with the chemical formula Page Module:Chem2/styles.css has no content.N+5 and structure Page Module:Chem2/styles.css has no content.N−N−N−N−N. Together with solid nitrogen polymers and the azide anion, it is one of only three poly-nitrogen species obtained in bulk quantities.

History

Within the High Energy Density Matter research program, run by the U.S. Air Force since 1986, systematic attempts to approach polynitrogen compounds began in 1998, when Air Force Research Laboratory at Edwards AFB became interested in researching alternatives to the highly toxic hydrazine-based rocket fuel and simultaneously funded several such proposals. Karl O. Christe, then, a senior investigator at AFRL, chose to attempt building linear Page Module:Chem2/styles.css has no content.N+5 out of Page Module:Chem2/styles.css has no content.N2F+ and Page Module:Chem2/styles.css has no content.N3, based on the proposed bond structure:[1]

Page Module:Chem2/styles.css has no content.[F−N≡N]+ + H−N=N+=N → [N≡N−N=N=N]+ + HF

The reaction succeeded, and Page Module:Chem2/styles.css has no content.[N5]+[AsF6] was created in sufficient quantities to be fully characterized by NMR, IR and Raman spectroscopy in 1999.[2] The salt was highly explosive, but when Page Module:Chem2/styles.css has no content.AsF5 was replaced by Page Module:Chem2/styles.css has no content.SbF5, a stronger Lewis acid, much more stable Page Module:Chem2/styles.css has no content.[N5]+[SbF6] was produced, shock-resistant and thermally stable up to 60–70 °C. This made bulk quantities, easy handling, and X-ray crystal structure analysis possible.[3]

Actually N5+ had been predicted by ab initio calculations as a member of the dicyanamide isoelectronic series by Pyykkö and Runeberg in 1991 and this was quoted as ref. [10] of Christe [2] in 1999.

Preparation

Reaction of Page Module:Chem2/styles.css has no content.N2F+ and Page Module:Chem2/styles.css has no content.HN3 in dry HF at −78 °C is the only known method so far:

Page Module:Chem2/styles.css has no content.cis-N2F2 + SbF5 → [N2F]+[SbF6]
Page Module:Chem2/styles.css has no content.[N2F]+[SbF6] + HN3 → [N5]+[SbF6] + HF

Chemistry

Page Module:Chem2/styles.css has no content.N+5 is capable of oxidizing water, NO, Page Module:Chem2/styles.css has no content.NO2 and Page Module:Chem2/styles.css has no content.Br2, but not Page Module:Chem2/styles.css has no content.Cl2 or Page Module:Chem2/styles.css has no content.O2; its electron affinity is 10.44 eV (1018.4 kJ/mol). For this reason, Page Module:Chem2/styles.css has no content.N+5 must be prepared and handled in a dry environment:

Page Module:Chem2/styles.css has no content.4 N+5 + 2 H2O → 4 H+ + 10 N2 + O2
Page Module:Chem2/styles.css has no content.2 [N5]+[SbF6] + 2 Br2 → 2 [Br2]+[SbF6] + 5 N2

Due to stability of the fluoroantimonate, it is used as the precursor for all other known salts, typically accomplished by metathesis reactions in non-aqueous solvents such as HF, Page Module:Chem2/styles.css has no content.SO2, Page Module:Chem2/styles.css has no content.CHF3, or Page Module:Chem2/styles.css has no content.CH3CN, where suitable hexafluoroantimonates are insoluble:

Page Module:Chem2/styles.css has no content.[N5]+[SbF6] + A+B → [N5]+B + A+[SbF6]

The most stable salts of Page Module:Chem2/styles.css has no content.N+5 decompose when heated to 50–60 °C: Page Module:Chem2/styles.css has no content.[N5]+[SbF6], Page Module:Chem2/styles.css has no content.[N5]+[SnF5], and Page Module:Chem2/styles.css has no content.[N5]+[B(CF3)4], while the most unstable salts that were obtained and studied, Page Module:Chem2/styles.css has no content.[N5]+[P(N3)6] and Page Module:Chem2/styles.css has no content.[N5]+[B(N3)4] were extremely shock and temperature sensitive, exploding in solutions as dilute as 0.5 mmol. A number of salts, such as fluoride, azide, nitrate, or perchlorate, cannot be formed.[1]

Structure and bonding

In valence bond theory, pentazenium can be described by six resonance structures:

Page Module:Chem2/styles.css has no content.[N≡N+−N−N+≡N] ↔ [N=N+=N−N+≡N] ↔ [N≡N+−N=N+=N] ↔ [N≡N+−N+≡N+−N2−] ↔ [N2−−N+≡N+−N+≡N] ↔ [N=N+=N+=N+=N],

where the last three structures have smaller contributions to the overall structure because they have less favorable formal charge states than the first three.[4][better source needed]

According to both ab initio calculations and the experimental X-ray structure, the cation is planar, symmetric, and approximately V-shaped, with bond angles 111° at the central atom (angle N2–N3–N4) and 168° at the second and fourth atoms (angles N1–N2–N3 and N3–N4–N5). The bond lengths for N1–N2 and N4–N5 are 1.10 Å and the bond lengths N2–N3 and N3–N4 are 1.30 Å.[3]

See also

References

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  1. ^ a b Page Module:Citation/CS1/styles.css has no content.Christe, Karl O. (14 Jun 2007). "Recent Advances in the Chemistry of N5+, N5- and High-Oxygen Compounds". Propellants, Explosives, Pyrotechnics. 32 (3): 194–204. doi:10.1002/prep.200700020.
  2. ^ Page Module:Citation/CS1/styles.css has no content.Christe, Karl O.; William W. Wilson; Jeffrey A. Sheehy; Jerry A. Boatz (12 Jul 1999). "N5+: A Novel Homoleptic Polynitrogen Ion as a High Energy Density Material". Angewandte Chemie International Edition. 38 (13–14): 2004–2009. doi:10.1002/(SICI)1521-3773(19990712)38:13/14<2004::AID-ANIE2004>3.0.CO;2-7. PMID 34182671.
  3. ^ a b Page Module:Citation/CS1/styles.css has no content.Vij, Ashwani; William W. Wilson; Vandana Vij; Fook S. Tham; Jeffrey A. Sheehy; Karl O. Christe (9 Jun 2001). "Polynitrogen Chemistry. Synthesis, Characterization, and Crystal Structure of Surprisingly Stable Fluoroantimonate Salts of N5+". J. Am. Chem. Soc. 123 (26): 6308–6313. Bibcode:2001JAChS.123.6308V. doi:10.1021/ja010141g. PMID 11427055. Archived from the original on 23 September 2017. Retrieved 29 April 2018.
  4. ^ Page Module:Citation/CS1/styles.css has no content."Method of drawing the Lewis Structures of N5+". Chemistry Net Blogspot. Blogger. October 31, 2012. Retrieved November 8, 2016.