电解质
化学
锂(药物)
电化学
盐(化学)
氟化锂
无机化学
水溶液
电解水
电解
氟化物
化学工程
电极
物理化学
内分泌学
工程类
医学
作者
Hans‐Georg Steinrück,Chuntian Cao,Maria R. Lukatskaya,Christopher J. Takacs,Gang Wan,David G. Mackanic,Yuchi Tsao,Jingbo Zhao,Brett A. Helms,Kang Xu,Oleg Borodin,James F. Wishart,Michael F. Toney
标识
DOI:10.1002/anie.202007745
摘要
Super-concentrated "water-in-salt" electrolytes recently spurred resurgent interest for high energy density aqueous lithium-ion batteries. Thermodynamic stabilization at high concentrations and kinetic barriers towards interfacial water electrolysis significantly expand the electrochemical stability window, facilitating high voltage aqueous cells. Herein we investigated LiTFSI/H2 O electrolyte interfacial decomposition pathways in the "water-in-salt" and "salt-in-water" regimes using synchrotron X-rays, which produce electrons at the solid/electrolyte interface to mimic reductive environments, and simultaneously probe the structure of surface films using X-ray diffraction. We observed the surface-reduction of TFSI- at super-concentration, leading to lithium fluoride interphase formation, while precipitation of the lithium hydroxide was not observed. The mechanism behind this photoelectron-induced reduction was revealed to be concentration-dependent interfacial chemistry that only occurs among closely contact ion-pairs, which constitutes the rationale behind the "water-in-salt" concept.
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