van Hees Alicia, Zhang Chao
Department of Chemistry-Ångström Laboratory, Uppsala University, Lägerhyddsvägen 1, P.O. Box 538, 75121 Uppsala, Sweden.
J Phys Chem Lett. 2024 Dec 12;15(49):12212-12217. doi: 10.1021/acs.jpclett.4c02923. Epub 2024 Dec 3.
Water-in-salt electrolytes with a surprisingly large electrochemical stability window of ≤3 V have revived interest in aqueous electrolytes for rechargeable lithium-ion batteries. However, recent reports of acidic pH measured in concentrated electrolyte solutions appear to be in contradiction with the suppressed activity of the hydrogen evolution reaction (HER). Therefore, the fundamental thermodynamics of proton reactivity in concentrated electrolyte solutions remains elusive. In this work, we have used density functional theory-based molecular dynamics (MD) simulations and the proton insertion method to investigate how the HER potential shifts in concentrated LiCl solutions under both acidic and alkaline conditions. Our results show that the intrinsic HER activity increases significantly with the salt concentration under acidic conditions but remains relatively constant under alkaline conditions. Moreover, by leverage over finite-field MD simulations, it is found that a determining factor for the HER activity is the Poisson potential of the liquid phase, which increases in concentrated electrolyte solutions with comparable values from both density functional theory and point-charge models.
盐包水电解质具有≤3 V的惊人的大电化学稳定窗口,这重新激发了人们对用于可充电锂离子电池的水性电解质的兴趣。然而,最近关于在浓电解质溶液中测得酸性pH的报道似乎与析氢反应(HER)活性的抑制相矛盾。因此,浓电解质溶液中质子反应性的基本热力学仍然难以捉摸。在这项工作中,我们使用基于密度泛函理论的分子动力学(MD)模拟和质子插入方法,研究了在酸性和碱性条件下浓LiCl溶液中HER电位如何变化。我们的结果表明,在酸性条件下,本征HER活性随盐浓度显著增加,但在碱性条件下保持相对恒定。此外,通过利用有限场MD模拟发现,HER活性的一个决定性因素是液相的泊松电位,其在浓电解质溶液中增加,密度泛函理论和点电荷模型的值相当。