离子电导率
尖晶石
锂(药物)
卤化物
材料科学
空位缺陷
无机化学
电导率
离子键合
活化能
兴奋剂
电解质
电阻率和电导率
物理化学
离子半径
导纳
快离子导体
反向
化学
离子
分子动力学
导电体
化学工程
逆温
分析化学(期刊)
电化学
作者
Xiaochen Yang (732559),Yu Chen (29959),Grace Wei (12235136),Mouhamad Said Diallo (17897429),Maxim Avdeev (1405357),Han-Ming Hau (7347479),Hao Qiu (491130),Huiwen Ji (1792630),Gerbrand Ceder (380361)
出处
期刊:
[Figshare (United Kingdom)]
日期:2025-02-21
标识
DOI:10.1021/acsenergylett.5c00078.s001
摘要
Halides are promising solid-state electrolytes for all-solid-state lithium batteries due to their exceptional oxidation stability, high Li-ion conductivity, and mechanical deformability. However, their practicality is limited by the reliance on rare and expensive metals. This study investigates the Li2MgCl4 inverse spinel system as a cost-effective alternative. Molecular dynamics simulations reveal that lithium disordering at elevated temperatures significantly reduces the activation energy in Li2MgCl4. To stabilize this disorder at lower temperatures, we experimentally explored the LixZr1–x/2Mgx/2Cl4 system and found that Zr doping induces both Zr and Li disorder at the 16c site at room temperature (RT). This leads to a 2 order-of-magnitude increase in ionic conductivity for the Li1.25Zr0.375Mg0.625Cl4 composition, achieving 1.4 × 10–5 S cm–1 at RT, compared to pristine Li2MgCl4. By deconvoluting the role of lithium vacancies and dopants, we reveal that cation disordering to the 16c site predominantly enhances ionic conductivity, whereas lithium vacancy concentration has a very limited effect.
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