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孤立化合物中较重主族元素之间的最高键级?S2I4(MF6)2(M = As,Sb)的能量学与振动光谱学

The highest bond order between heavier main-group elements in an isolated compound? Energetics and vibrational spectroscopy of S2I4(MF6)2 (M = As, Sb).

作者信息

Brownridge Scott, Cameron T Stanley, Du Hongbin, Knapp Carsten, Köppe Ralf, Passmore Jack, Rautiainen J Mikko, Schnöckel Hansgeorg

机构信息

Department of Chemistry, University of New Brunswick, Fredericton, New Brunswick E3B 6E2, Canada.

出版信息

Inorg Chem. 2005 Mar 21;44(6):1660-71. doi: 10.1021/ic049035g.

Abstract

The vibrational spectra of S2I4(MF6)2(s) (M = As, Sb), a normal coordinate analysis of S2I4(2+), and a redetermination of the X-ray structure of S2I4(AsF6)2 at low temperature show that the S-S bond in S2I4(2+) has an experimentally based bond order of 2.2-2.4, not distinguishably different from bond orders, based on calculations, of the Si-Si bonds in the proposed triply bonded disilyne of the isolated [(Me3Si)2 CH]2 (iPr)SiSiSiSi(iPr)[CH(SiMe3)2]2 and the hypothetical trans-RSiSiR (R = H, Me, Ph). Therefore, both S2I4(2+) and [(Me3Si)2 CH]2 (iPr)SiSiSiSi(iPr)[CH(SiMe3)2]2 have the highest bond orders between heavier main-group elements in an isolated compound, given a lack of the general acceptance of a bond order > 2 for the Ga-Ga bond in Na2[{Ga(C6H3Trip2-2,6)}2] (Trip = C6H2Pr(i)3-2,4,6) and the fact that the reported bond orders for the heavier group 14 alkyne analogues of formula REER [E = Ge, Sn, or Pb; R = bulky organic group] are ca. 2 or less. The redetermination of the X-ray structure gave a higher accuracy for the short S-S [1.842(4) A, Pauling bond order (BO) = 2.4] and I-I [2.6026(9) A, BO = 1.3] bonds and allowed the correct modeling of the AsF6- anions, the determination of the cation-anion contacts, and thus an empirical estimate of the positive charge on the sulfur and iodine atoms. FT-Raman and IR spectra of both salts, obtained for the first time, were assigned with the aid of density functional theory calculations and gave a stretching frequency of 734 cm(-1) for the S-S bond and 227 cm(-1) for the I-I bond, implying bond orders of 2.2 and 1.3, respectively. A normal-coordinate analysis showed that no mixing occurs and yielded force constants for the S-S (5.08 mdyn/A) and I-I bonds (1.95 mdyn/A), with corresponding bond orders of 2.2 for the S-S bond and 1.3 for the I-I bond, showing that S2I4(2+) maximizes pi bond formation. The stability of S2I4(2+) in the gas phase, in SO2 and HSO3F solutions, and in the solid state as its AsF6- salts was established by calculations using different methods and basis sets, estimating lattice enthalpies, and calculating solvation energies. Dissociation reactions of S2I4(2+) into various small monocations in the gas phase are favored [e.g., S2I4(2+)(g) --> 2SI2(+)(g), deltaH = -200 kJ/mol], as are reactions with I2 [S2I4(2+)(g) + I2(g) --> 2SI3(+)(g), deltaH = -285 kJ/mol). However, the corresponding reactions in the solid state are endothermic [S2I4(AsF6)2(s) --> 2SI2(AsF6)(s), deltaH = +224 kJ/mol; S2I4(AsF6)2 + I2(s) -->2SI3(AsF6)(s), deltaH = +287 kJ/mol). Thus, S2I4(2+) and its multiple bonds are lattice stabilized in the solid state. Computational and FT-Raman results for solution behavior are less clear cut; however, S2I4(2+) was observed by FT-Raman spectroscopy in a solution of HSO3F/AsF5, consistent with the calculated small, positive free energies of dissociation in HSO3F.

摘要

S2I4(MF6)2(s)(M = As,Sb)的振动光谱、S2I4(2+)的简正坐标分析以及低温下S2I4(AsF6)2的X射线结构重新测定表明,S2I4(2+)中的S-S键基于实验的键级为2.2 - 2.4,与基于计算得出的孤立的[(Me3Si)2 CH]2 (iPr)SiSiSiSi(iPr)[CH(SiMe3)2]2中三键联乙硅烯的Si-Si键以及假设的反式-RSiSiR(R = H,Me,Ph)的键级没有明显差异。因此,鉴于Na2[{Ga(C6H3Trip2-2,6)}2](Trip = C6H2Pr(i)3-2,4,6)中Ga-Ga键键级> 2未被普遍接受,且报道的通式为REER [E = Ge,Sn或Pb;R = 庞大有机基团]的较重14族炔烃类似物的键级约为2或更低,S2I4(2+)和[(Me3Si)2 CH]2 (iPr)SiSiSiSi(iPr)[CH(SiMe3)2]2在孤立化合物中较重主族元素之间具有最高的键级。X射线结构的重新测定提高了短S-S [1.842(4) Å,鲍林键级(BO)= 2.4]和I-I [2.6026(9) Å,BO = 1.3]键的精度,并允许对AsF6-阴离子进行正确建模,确定阳离子与阴离子的接触,从而对硫和碘原子上的正电荷进行经验估计。首次获得的两种盐的傅里叶变换拉曼光谱和红外光谱借助密度泛函理论计算进行了归属,得出S-S键的伸缩频率为734 cm(-1),I-I键的伸缩频率为227 cm(-1),分别意味着键级为2.2和1.3。简正坐标分析表明没有混合发生,并得出S-S键(5.08 mdyn/Å)和I-I键(1.95 mdyn/Å)的力常数,相应的S-S键键级为2.2,I-I键键级为1.3,表明S2I4(2+)使π键形成最大化。通过使用不同方法和基组进行计算、估计晶格焓以及计算溶剂化能,确定了S2I4(2+)在气相、SO2和HSO3F溶液以及作为其AsF6-盐的固态中的稳定性。S2I4(2+)在气相中分解为各种小阳离子的反应是有利的[例如,S2I4(2+)(g) --> 2SI2(+)(g),ΔH = -2​​00 kJ/mol],与I2的反应也是如此[S2I4(2+)(g) + I2(g) --> 2SI3(+)(g),ΔH = -285 kJ/mol]。然而,固态中的相应反应是吸热的[S2I4(AsF6)2(s) --> 2SI2(AsF6)(s),ΔH = +224 kJ/mol;S2I4(AsF6)2 + I(2)(s) -->2SI3(AsF6)(s),ΔH = +287 kJ/mol]。因此,S2I4(2+)及其多重键在固态中通过晶格稳定。关于溶液行为的计算和傅里叶变换拉曼结果不太明确;然而,通过傅里叶变换拉曼光谱在HSO3F/AsF5溶液中观察到了S2I4(2+),这与计算得出的在HSO3F中解离的小的正自由能一致。

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