材料科学
分离器(采油)
膜
溶解
阴极
尖晶石
热稳定性
离子电导率
化学工程
电解质
冶金
电极
化学
热力学
物理
工程类
物理化学
生物化学
作者
Myoungsoo Shin,Woo‐Jin Song,Jung‐Gu Han,Chihyun Hwang,Sangyeop Lee,Seokkeun Yoo,Sewon Park,Hyun‐Kon Song,Seungmin Yoo,Nam‐Soon Choi,Soojin Park,Seungmin Yoo,Nam‐Soon Choi,Soojin Park,Soojin Park
标识
DOI:10.1002/aenm.201900570
摘要
Abstract Transition metal ion dissolution due to hydrofluoric acid attack is a long‐standing issue in the Mn‐based spinel cathode materials of lithium‐ion batteries (LIBs). Numerous strategies have been proposed to address this issue, but only a fragmentary solution has been established. In this study, reported is a seaweed‐extracted multitalented material, namely, agar, for high‐performance LIBs comprising Mn‐based cathode materials at a practical loading density (23.1 mg cm −2 for LiMn 2 O 4 and 10.9 mg cm −2 for LiNi 0.5 Mn 1.5 O 4 , respectively). As a surface modifier, 3‐glycidoxypropyl trimethoxysilane (GPTMS) is employed to enable the agar to have different phase separation behaviors during the nonsolvent‐induced phase separation process, thus eventually leading to the fabrication of an outstanding separator membrane that features a well‐defined porous structure, superior mechanical robustness, high ionic conductivity, and good thermal stability. The GPTMS‐modified agar separator membrane coupled with a pure agar binder to the LiNi 0.5 Mn 1.5 O 4 /graphite full cell leads to exceptional improvement in electrochemical performance outperforming binders and separator membrane in current commercial products even at 55 °C; this improvement is due to beneficial features such as Mn 2+ chelation and PF 5 stabilizing capabilities. This study is believed to provide insights into the potential energy applications of natural seaweeds.
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