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  • 1
    ISSN: 1572-9001
    Keywords: Electron diffraction ; ab initio calculations ; tert-butylazide ; molecular structure
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology
    Notes: Abstract The molecular structure of tert-butylazide has been determined by gas-phase electron diffraction and quantum chemical calculations. The HF/6-31G* and B3LYP/6-31G** calculations yielded near C s symmetry for the tert-butyl group, anti conformation of the (C)N—N bond with respect to one of the $$({\text{N}}){\text{C}}{\kern 1pt} - {\kern 1pt} {\text{C}}({\text{H}}_3 )$$ bonds, and an essentially free rotation around the $$({\text{C}}){\text{N}}{\kern 1pt} - {\kern 1pt} {\text{N}}({\text{N}})$$ bond with a 0.34 kcal/mol energy difference between syn and anti conformations of the CNNN moiety, the anti being the more stable form. The electron diffraction analysis was carried out by modeling a mixture of conformational isomers, generated by rotating the terminal nitrogen of the azide group, using a computed rotational potential. The data are consistent with C s symmetry for the tert-butyl group. The $$({\text{C}}){\text{N}}{\kern 1pt} - {\kern 1pt} {\text{N}}$$ bond, however, was found to be rotated out of the anti position, with respect to one of the $$({\text{N}}){\text{C}}{\kern 1pt} - {\kern 1pt} {\text{CH}}_3 $$ bonds, by 12.5(12)°. The electron diffraction analysis yielded the following bond lengths (r g), bond angles, and torsional angles: $${\text{C}}{\kern 1pt} - {\kern 1pt} {\text{H 1}}{\text{.111(5) }}{\AA}$$ , $$({\text{N}}{\kern 1pt} - {\kern 1pt} {\text{N}})_{{\text{terminal}}} {\text{ 1}}{\text{.143(4) }}{\AA}, (N{\kern 1pt} - {\kern 1pt} {\text{N}})_{central} {\text{ 1}}{\text{.240(5) }}{\AA}{\text{, (C}}{\kern 1pt} - {\kern 1pt} {\text{C)}}_{{\text{mean}}} {\text{ 1}}{\text{.534(3) }}{\AA}{\text{, N}}{\kern 1pt} - {\kern 1pt} {\text{N}}{\kern 1pt} - {\kern 1pt} {\text{N 171}}{\text{.8(20)}}^\circ {\text{, N}}{\kern 1pt} - {\kern 1pt} {\text{N}}{\kern 1pt} - {\kern 1pt} {\text{C 118}}{\text{.6()10}}^\circ {\text{, N}}{\kern 1pt} - {\kern 1pt} {\text{C}}{\kern 1pt} - {\kern 1pt} {\text{C 102}}{\text{.5(6)}}^\circ {\text{ and 110}}{\text{.5(4)}}^\circ {\text{, C}}{\kern 1pt} - {\kern 1pt} {\text{C}}{\kern 1pt} - {\kern 1pt} {\text{H 111}}{\text{.2(4)}}^\circ {\text{, C}}{\kern 1pt} - {\kern 1pt} {\text{C}}{\kern 1pt} - {\kern 1pt} {\text{C 110}}{\text{.2(7)}}^\circ {\text{ and 112}}{\text{.6(7)}}^\circ {\text{, N}}{\kern 1pt} - {\kern 1pt} {\text{N}}{\kern 1pt} - {\kern 1pt} {\text{C}}{\kern 1pt} - {\kern 1pt} {\text{C 167}}{\text{.5(12)}}^\circ {\text{, 50}}{\text{.1(6)}}^\circ {\text{, and - 75}}{\text{.2(10)}}^\circ $$ .
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  • 2
    Electronic Resource
    Electronic Resource
    Weinheim : Wiley-Blackwell
    Berichte der deutschen chemischen Gesellschaft 128 (1995), S. 201-203 
    ISSN: 0009-2940
    Keywords: Nitrogen oxides ; Calculations, ab initio ; Tetranitrogen monoxide ; Dinitrogen monoxide ; Chemistry ; Inorganic Chemistry
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: Decomposition of Nitrosyl Azide, N4O: Are Cyclic Nitrogen Oxides Existent?The unimolecular decomposition of nitrosyl azide (tetranitrogen monoxide), N4O, was studied at the electron-correlated, spin-restricted RMP2 level with the 6-31G(d,p) and 6-31+G* basis sets. Frequency calculations were performed at 6-31+G* on the optimized structures. It is demonstrated that the experimentally established trans-trans-N4O (Cs) may either interconvert into cis-cis-N4O which upon decomposition forms cyclic N4O (C2v) as an intermediate species to finally give N2O (C∞v) and N2, or trans-trans-N4O may directly dissociate into cyclic N2O (C2v) and N2. All structures determined were rationalized by energy hypersurface calculations.
    Additional Material: 4 Ill.
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  • 3
    ISSN: 0009-2940
    Keywords: Selenium-nitrogen compounds ; Sulfur-nitrogen compounds ; Calculations, ab initio ; Chemistry ; Inorganic Chemistry
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: The structures of cationic species of the series [X2Y—N—YX2]+ (X = F, Cl; Y = S, Se) have been computed ab initio using all electron treatments for first-row elements and sulfur and quasi-relativistic pseudopotentials for Se and Cl. Splitvalence basis sets with polarization and diffuse functions were employed. The MP2 results for the (non-isostructural!) cations [Cl2Se—N—SeCl2]+ (1: Cs) and [F2S—N—SF2]+ (2: C2v) are in excellent agreement with the experimental (X-ray) observations. Both structures represent local minima. A deeper minimum for either of the cations is represented by another C2v isomer which for crystal lattice energy reasons is stable in the isolated state only. The geometries of the hitherto unknown species [Cl2S—N—SCl2]+ (3) and [F2Se—N—SeF2]+ (4) have been assessed by ab initio HF calculations. In analogy to 2, cations 3 and 4 are predicted to prefer C2v symmetry. Therefore, 1 exhibits unusual structural features. According to strictly localized natural bond orbital analysis (NBO), the central nitrogen atoms in 1 and 2 possess two lone pairs of electrons (LP: one sp hybrid and one p orbital). The relatively short Se—N and S—N bond distances in 1 (1.741-1.760 Å) and 2 (1.551 Å) can best be attributed to LP(N)→s̰*(Y—X) negative hyperconjugation (1: Y = Se, X = Cl; 2: Y = S, X = F).
    Additional Material: 8 Ill.
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  • 4
    Electronic Resource
    Electronic Resource
    Weinheim : Wiley-Blackwell
    Angewandte Chemie International Edition in English 34 (1995), S. 511-520 
    ISSN: 0570-0833
    Keywords: ab initio calculations ; azides ; nitrogen compounds ; Azides ; Ab initio calculations ; Nitrogen ; Chemistry ; General Chemistry
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: The chemistry of covalent inorganic azides originated with the synthesis of aqueous HN3 solutions by Tony Curtis in 1890. A little later, in 1900, it proved possible to prepare iodine azide, IN3, as the first member of the meanwhile complete series of halogen azides. Since then it has been possible to synthesize, in addition to HN3 and the stable salt H2N3+SbF6-, azide compounds of elements from Groups 13 to 17. In these compounds the N3 moiety acts as a pseudohalogen and is primarily covalently coordinated to the nonmetal. Only a few organic azides, however, as well as HN3, H2N3+, and all halogen azides have been thoroughly studied with respect to structure and bonding. The combined application of diffraction methods (X-ray and electron diffraction) and microwave spectroscopy together with quantum chemical approaches such as ab initio SCF and density functional calculations have led in the last few years to an improved understanding of the molecular properties of numerous nonmetal azides, almost all of which are explosive. This interaction of theory and experiment has greatly enhanced the development of azide chemistry and has led to realistic expectations for the synthesis of as yet unknown nonmetal azides.
    Additional Material: 11 Ill.
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