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利用原子层沉积技术抑制锂离子电池中溶剂的分解:第一性原理建模与实验研究。

Using atomic layer deposition to hinder solvent decomposition in lithium ion batteries: first-principles modeling and experimental studies.

机构信息

Sandia National Laboratories, MS 1415 and 0888, Albuquerque, New Mexico 87185, USA.

出版信息

J Am Chem Soc. 2011 Sep 21;133(37):14741-54. doi: 10.1021/ja205119g. Epub 2011 Aug 24.

Abstract

Passivating lithium ion (Li) battery electrode surfaces to prevent electrolyte decomposition is critical for battery operations. Recent work on conformal atomic layer deposition (ALD) coating of anodes and cathodes has shown significant technological promise. ALD further provides well-characterized model platforms for understanding electrolyte decomposition initiated by electron tunneling through a passivating layer. First-principles calculations reveal two regimes of electron transfer to adsorbed ethylene carbonate molecules (EC, a main component of commercial electrolyte), depending on whether the electrode is alumina coated. On bare Li metal electrode surfaces, EC accepts electrons and decomposes within picoseconds. In contrast, constrained density functional theory calculations in an ultrahigh vacuum setting show that, with the oxide coating, e(-) tunneling to the adsorbed EC falls within the nonadiabatic regime. Here the molecular reorganization energy, computed in the harmonic approximation, plays a key role in slowing down electron transfer. Ab initio molecular dynamics simulations conducted at liquid EC electrode interfaces are consistent with the view that reactions and electron transfer occur right at the interface. Microgravimetric measurements demonstrate that the ALD coating decreases electrolyte decomposition and corroborates the theoretical predictions.

摘要

钝化锂离子(Li)电池电极表面以防止电解质分解对于电池运行至关重要。最近关于在阳极和阴极上进行保形原子层沉积(ALD)涂层的研究显示出了巨大的技术潜力。ALD 进一步为通过钝化层的电子隧穿引发的电解质分解提供了经过良好表征的模型平台。第一性原理计算揭示了电子向吸附的碳酸亚乙酯分子(EC,商业电解质的主要成分)转移的两种情况,具体取决于电极是否涂覆氧化铝。在裸露的 Li 金属电极表面,EC 接受电子并在皮秒内分解。相比之下,在超高真空环境下的约束密度泛函理论计算表明,在氧化物涂层的情况下,到吸附 EC 的 e(-)隧穿属于非绝热区。在这里,分子重组能(在谐波近似下计算)在减缓电子转移方面起着关键作用。在液态 EC 电极界面进行的从头分子动力学模拟与反应和电子转移就在界面处发生的观点一致。微量天平测量证明 ALD 涂层可以减少电解质分解,并证实了理论预测。

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