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Calculation of the visible-UV absorption spectra of hydrogen sulfide bisulfide polysulfides and As and Sb sulfides in aqueous solution

机译:水溶液中硫化氢二硫化氢多硫化物以及As和Sb硫化物的可见-紫外吸收光谱的计算

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摘要

Recently we showed that visible-UV spectra in aqueous solution can be accurately calculated for arsenic (III) bisulfides, such as As(SH)3, As(SH)2S- and their oligomers. The calculated lowest energy transitions for these species were diagnostic of their protonation and oligomerization state. We here extend these studies to As and Sb oxidation state III and v sulfides and to polysulfides Sn2-, n = 2–6, the bisulfide anion, SH-, hydrogen sulfide, H2S and the sulfanes, SnH2, n = 2–5. Many of these calculations are more difficult than those performed for the As(iii) bisulfides, since the As and Sb(v) species are more acidic and therefore exist as highly charged anions in neutral and basic solutions. In general, small and/or highly charged anions are more difficult to describe computationally than larger, monovalent anions or neutral molecules. We have used both Hartree-Fock based (CI Singles and Time-Dependent HF) and density functional based (TD B3LYP) techniques for the calculations of absorption energy and intensity and have used both explicit water molecules and a polarizable continuum to describe the effects of hydration. We correctly reproduce the general trends observed experimentally, with absorption energies increasing from polysulfides to As, Sb sulfides to SH- to H2S. As and Sb(v) species, both monomers and dimers, also absorb at characteristically higher energies than do the analogous As and Sb(III)species. There is also a small reduction in absorption energy from monomeric to dimeric species, for both As and Sb III and v. The polysufides, on the other hand, show no simple systematic changes in UV spectra with chain length, n, or with protonation state. Our results indicate that for the As and Sb sulfides, the oxidation state, degree of protonation and degree of oligomerization can all be determined from the visible-UV absorption spectrum. We have also calculated the aqueous phase energetics for the reaction of S8 with SH- to produce the polysulfides, SnH-, n = 2–6. Our results are in excellent agreement with available experimental data, and support the existence of a S6 species.
机译:最近,我们表明可以准确地计算出水溶液中的可见紫外光谱,用于检测砷(III)二硫化物,例如As(SH)3,As(SH)2S -及其低聚物。计算出的这些物种的最低能量跃迁可诊断其质子化和低聚状态。我们在这里将这些研究扩展到As和Sb的氧化态III和v硫化物以及多硫化物Sn 2-,n = 2–6,双硫化物阴离子SH -,氢硫化物,硫化氢和硫化物,硫化氢,n = 2–5。与As(iii)二硫化物相比,这些计算中的许多难度更大,因为As和Sb(v)物种酸性更高,因此在中性和碱性溶液中以高电荷阴离子形式存在。通常,与较大的一价阴离子或中性分子相比,较小和/或高度带电的阴离子在计算上更难以描述。我们已经使用基于Hartree-Fock的(CI单打和随时间变化的HF)技术和基于密度泛函的(TD B3LYP)技术来计算吸收能和强度,并使用了显性水分子和可极化的连续体来描述保湿。我们正确地再现了实验观察到的一般趋势,吸收能量从多硫化物增加到As,Sb硫化物增加到SH -到H2S。与类似的As和Sb(III)物种相比,As和Sb(v)物种(单体和二聚体)的特征吸收能量也更高。对于As和Sb III和v,从单体到二聚体的吸收能也有小幅下降。另一方面,多硫化物在链长,n或质子化状态下,对UV光谱没有简单的系统变化。 。我们的结果表明,对于As和Sb硫化物,氧化态,质子化程度和低聚程度都可以通过可见-UV吸收光谱确定。我们还计算了S8与SH -反应生成多硫化物SnH -的水相能量,n = 2–6。我们的结果与可用的实验数据高度吻合,并支持S6物种的存在。

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