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关于涂覆ZnO纳米片的隔膜在稳定锂金属负极中作用的计算与实验见解

Computational and Experimental Insights on the Role of ZnO Nanoplatelets Coated Separator in Stabilizing Lithium Metal Anodes.

作者信息

Singh Ankush Kumar, Yadav Rashmi, Buragohain Madhurja, Kunnikuruvan Sooraj

机构信息

Department of Chemistry, IIT(BHU), Varanasi, 221005, India.

Department of Chemistry, Indian Institute of Technology Madras, Chennai, 600036, India.

出版信息

Small. 2025 Aug;21(31):e2505175. doi: 10.1002/smll.202505175. Epub 2025 Jun 3.

Abstract

Severe interfacial instability, dendritic growth, poor reversibility, and compromised cycle life of lithium metal anode have limited its application as a potential anode. Herein, a lithiophilic ZnO-coated separator (ZnO-PP) is used to mitigate the interfacial instability by creating an artificial solid electrolyte interface (ASEI) in situ through the spontaneous reaction of ZnO with the lithium surface. The composite separator exhibited excellent wettability, high ionic conductivity, improved Li transference number, and exchange current density. Ascribed to the formation of Zn-rich ASEI, a substantially lower nucleation overpotential is observed in the presence of ZnO-PP with a 55% increase in the cycle life compared to the unmodified separator. The improved electrochemical performance and prolonged cycle life are a result of smooth and uniform metal plating due to Zn-based SEI, which is confirmed by the post-cycling measurements. The density functional theory and AIMD calculations further showed that the 'by-side' lithium plating is preferred in the case of ZnO-PP, resulting in smooth plating, and suppressed electrolyte degradation. Furthermore, a Li|Cu and full cell with lithium cobalt oxide showed substantially improved reversibility, rate performance, and capacity retention with ZnO-PP.

摘要

锂金属负极严重的界面不稳定性、枝晶生长、较差的可逆性以及有限的循环寿命限制了其作为潜在负极的应用。在此,一种亲锂的氧化锌涂层隔膜(ZnO-PP)通过氧化锌与锂表面的自发反应原位形成人工固体电解质界面(ASEI)来减轻界面不稳定性。该复合隔膜表现出优异的润湿性、高离子导电性、改善的锂迁移数和交换电流密度。由于形成了富含锌的ASEI,在存在ZnO-PP的情况下观察到成核过电位显著降低,与未改性隔膜相比,循环寿命提高了55%。电化学性能的改善和循环寿命的延长是由于锌基SEI导致的平滑且均匀的金属镀层,这通过循环后测量得到证实。密度泛函理论和AIMD计算进一步表明,在ZnO-PP的情况下,“并排”锂镀层是优选的,从而导致平滑镀层并抑制电解质降解。此外,使用ZnO-PP的锂|铜电池和锂钴氧化物全电池显示出显著改善的可逆性、倍率性能和容量保持率。

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