电解质
材料科学
化学工程
阳极
电化学
相间
碳纤维
介孔材料
分解
无机化学
电极
有机化学
复合材料
化学
催化作用
物理化学
生物
遗传学
复合数
工程类
作者
Hande Alptekin,Heather Au,Emilia Olsson,Jonathon Cottom,Anders C. S. Jensen,Thomas F. Headen,Qiong Cai,Alan J. Drew,Maria Crespo Ribadeneyra,Maria‐Magdalena Titirici
标识
DOI:10.1002/admi.202101267
摘要
Abstract The microstructure of hard carbons can be designed to maximize their performance as anodes for sodium‐ion batteries. However, the nature of the electrolyte is also decisive in the capacity and long‐term stability. Here, hard carbons with a tailored bimodal pore network of internal micropores interconnected through mesopores are studied as sodium‐ion battery anodes. The evolution of their solid electrolyte interphase (SEI) is analyzed in three different electrolytes (NaPF 6 in an ether‐based solvent, and NaPF 6 or NaClO 4 in a carbonate‐based system). Combining experiments with density functional theory calculations, it is proposed that formation of the SEI is mainly controlled by the decomposition of the salt anion. This process occurs through the intermediate functionalization of the carbon surface by the decomposed anion fragments. It is suggested that the innermost SEI sub‐layer governs the performance and long‐term stability of the anode. While the presence of a fluorine‐containing salt appears to have a determining role in the SEI stability, the electrochemical decomposition of carbonate‐based solvents is detrimental for the long‐term stability as the interfacial resistance increases. In contrast, the ether‐based system enables stable long‐term cycling as the interphase remains almost intact once the first fluorine‐rich SEI layer is formed.
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