阳极
法拉第效率
材料科学
电解质
金属
电极
纳米复合材料
相间
氧化还原
储能
纳米技术
化学工程
化学
冶金
生物
量子力学
物理
工程类
遗传学
物理化学
功率(物理)
作者
Changyuan Bao,Junhui Wang,Bo Wang,Jianguo Sun,Linchun He,Zhenghui Pan,Yunpeng Jiang,Dianlong Wang,Ximeng Liu,Shi Xue Dou,John Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2022-10-12
卷期号:16 (10): 17197-17209
被引量:51
标识
DOI:10.1021/acsnano.2c07771
摘要
Owing to several advantages of metallic sodium (Na), such as a relatively high theoretical capacity, low redox potential, wide availability, and low cost, Na metal batteries are being extensively studied, which are expected to play a major role in the fields of electric vehicles and grid-scale energy storage. Although considerable efforts have been devoted to utilizing MXene-based materials for suppressing Na dendrites, achieving a stable cycling of Na metal anodes remains extremely challenging due to, for example, the low Coulombic efficiency (CE) caused by the severe side reactions. Herein, a g-C3N4 layer was attached in situ on the Ti3C2 MXene surface, inducing a surface state reconstruction and thus forming a stable hetero-interphase with excellent sodiophilicity between the MXene and g-C3N4 to inhibit side reactions and guide uniform Na ion flux. The 3D construction can not only lower the local current density to facilitate uniform Na plating/stripping but also mitigate volume change to stabilize the electrolyte/electrode interphase. Thus, the 3D Ti3C2 MXene@g-C3N4 nanocomposite enables much enhanced average CEs (99.9% at 1 mA h cm-2, 0.5 mA cm-2) in asymmetric half cells, long-term stability (up to 700 h) for symmetric cells, and stable cycling (up to 800 cycles at 2 C), together with outstanding rate capability (up to 20 C), of full cells. The present study demonstrates an approach in developing practically high performance for Na metal anodes.
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