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多硫化物二价阴离子和自由基阴离子在化学、物理和生物科学中的作用,包括基于硫的电池。

The role of polysulfide dianions and radical anions in the chemical, physical and biological sciences, including sulfur-based batteries.

机构信息

Institute of Chemistry, Technical University Berlin, D-10623 Berlin, Germany.

Department of Chemistry, The University of Calgary, Calgary, Alberta T2N 1N4, Canada.

出版信息

Chem Soc Rev. 2019 Jun 17;48(12):3279-3319. doi: 10.1039/c8cs00826d.

Abstract

The well-known tendency of sulfur to catenate is exemplified by an extensive series of polysulfide dianions [Sn]2- (n = 2-9) and related radical monoanions [Sn]˙-. The dianions can be isolated as crystalline salts with appropriate cations and structurally and spectroscopically characterized. Although the smaller radical monoanions may be stabilized in zeolitic matrices, they are usually formed in solution via disproportionation or partial dissociation of the dianions as well as by electrochemical reduction of elemental sulfur. An understanding of the fundamental chemistry of these homoatomic species is key to unravelling their behaviour in a broad variety of chemical environments. This review will critically evaluate the techniques used to characterize polysulfide dianions and radical anions both in solution and in the solid state, i.e. Raman, UV-visible, EPR, NMR and X-ray absorption spectroscopy, X-ray crystallography, mass spectrometry, chromatography and high-level quantum-chemical calculations. This is followed by a discussion of recent advances in areas in which these anionic sulfur species play a crucial role, viz. alkali-metal-sulfur batteries, organic syntheses, biological chemistry, geochemical processes including metal transport, coordination complexes, atmospheric chemistry and materials science.

摘要

硫的链状倾向在广泛的多硫化物二价阴离子 [Sn]2-(n = 2-9)和相关的自由基单价阴离子 [Sn]˙-系列中得到了例证。二价阴离子可以作为带有适当阳离子的晶体盐分离出来,并通过结构和光谱进行表征。尽管较小的自由基单价阴离子可以在沸石基质中稳定存在,但它们通常通过二价阴离子的歧化或部分解离以及通过元素硫的电化学还原在溶液中形成。理解这些同原子物种的基本化学性质是揭示它们在各种化学环境中行为的关键。本综述将批判性地评估用于在溶液中和固态中表征多硫化物二价阴离子和自由基阴离子的技术,即拉曼、紫外可见、EPR、NMR 和 X 射线吸收光谱、X 射线晶体学、质谱、色谱和高级量子化学计算。接下来讨论这些阴离子硫物种在关键作用的领域的最新进展,即碱金属-硫电池、有机合成、生物化学、包括金属运输在内的地球化学过程、配位络合物、大气化学和材料科学。

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