材料科学
微观结构
降级(电信)
机制(生物学)
自放电
化学工程
纳米技术
工程物理
电池(电)
冶金
热力学
计算机科学
电信
认识论
物理
工程类
哲学
功率(物理)
作者
Jiarui Zhang,Chengyu Li,Xiang Gao,Jie Yin,Cairong Jiang,Jianjun Ma,Wenge Yang,Yongjin Chen
出处
期刊:Rare Metals
[Springer Science+Business Media]
日期:2024-09-26
卷期号:44 (2): 1392-1400
被引量:8
标识
DOI:10.1007/s12598-024-02945-w
摘要
Li/MnO 2 primary batteries are widely used in industry for their high specific capacity and safety. However, a deep comprehension of the Li + insertion mechanism and the high self‐discharge rate of the batteries is still needed. Here, the storage mechanism of Li + in the tunnel structure of MnO 2 as well as the dissolution and migration of Mn‐ions were investigated based on multi‐scale approaches. The Li/Mn ratio (at%) is determined at about 0.82 when the discharge voltage decreases to 2 V. The limited Li‐ions transport rate in the bulk MnO 2 restrains the reduction reaction, resulting in a low practical specific capacity. Moreover, utilizing spherical aberration‐corrected transmission electron microscopy (TEM) coupled with electron energy loss spectroscopy (EELS), the presence of a mixed valence state layer of Mn 2+ /Mn 3+ /Mn 4+ on the surface of the original 20 nm MnO 2 particles was identified, which could contribute to the initial dissolution of Mn‐ions. The battery separator exhibited channels for Mn‐ions migration and diffusion and aggregated Mn particles. We put forward the discharge and degradation route in the ways of Mn‐ions trajectories, and our findings provide a deep understanding of the high self‐discharge rates and the capacity decay of Li‐Mn primary batteries.
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