Dendrite Formation and Self‐Healing Mechanism in Ionic Liquid‐Based Magnesium Batteries

材料科学 枝晶(数学) 成核 电解质 阳极 电流密度 化学工程 电池(电) 锂(药物) 电流(流体) 自行车 离子键合 离子 纳米技术 形态学(生物学) 离子液体
作者
Omar W. Elkhafif,Yuanzhu Zhao,Zhenyu Guo,Maria‐Magdalena Titirici,Timo Jacob,Hagar K. Hassan
出处
期刊:Advanced Energy Materials [Wiley]
卷期号:16 (11) 被引量:3
标识
DOI:10.1002/aenm.202505315
摘要

ABSTRACT Magnesium (Mg) is set as a viable alternative battery material to lithium (Li) owing to its cost, natural abundance, and safety. Nevertheless, the formation of dendrites on Mg anodes remains controversial. While some studies refute their existence, others report contradictory findings influenced by current density and the insufficiently understood roles of electrolyte formulation, additives, and temperature. In this work, these parameters are systematically investigated using symmetric Mg|Mg and asymmetric Mg|TiS 2 cells with tailored ionic‐liquid‐based electrolytes. Furthermore, operando optical microscopy is employed to visualize nucleation and dendritic growth at different current densities. At low current densities (0.1–0.5 mA cm −2 ), non‐uniform island‐like Mg deposits evolved into soft dendrites, finally leading to short‐circuiting. Contrary, higher current densities (1–5 mA cm −2 ) promote uniform, spherical deposits and facilitate stable cycling over 700 cycles. In Mg|TiS 2 asymmetric cells, enhanced cycling stability is observed at 50 mA g −1 , whereas soft dendrite formation at 10 mA g −1 leads to cell failure within 30 cycles. Taking advantage of Mg's safety, cycling of symmetric cells are continued even beyond dendrite‐forming to study morphological and mechanical recovery. Notably, our analysis reveales self‐healing due to dendrite fusion in previously short‐circuited cells. These findings reveal conditions affecting Mg dendrite behavior, highlighting the key roles of current density and temperature in developing stable, rechargeable Mg batteries, and reporting self‐healing in Mg batteries for the first time.
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