Di Miaoxin, Song Zhenqi, Chen Suhua, Bai Ying
International Joint Research Laboratory of New Energy Materials and Devices of Henan Province, School of Physics and Electronics, Henan University, Kaifeng, 475004, P. R. China.
Nanoscale. 2023 Dec 7;15(47):19159-19167. doi: 10.1039/d3nr03597b.
Transition metal sulfides (TMSs) have drawn promising attention due to their low cost and high theoretical capacity for sodium storage. However, the critical issues of TMSs with huge volume changes and lower ionic/electronic conductivity are the major challenges for their practical application in sodium-ion batteries. Herein, we constructed cobalt-doped ZnS encapsulated in an N-doped carbon shell (denoted as Co-ZnS@NC), which effectively alleviates the volume expansion and improves sodium storage performance. The mechanism analysis and ion diffusion kinetics analysis (GITT, EIS, and CV) prove the acceleration of Na diffusion by the built-in electric field and buffer carbon layer in the Co-ZnS@NC, optimizing the cycle life and rate capability. The as-prepared Co-ZnS@NC has a high reversible capacity of 456.8 mA h g after 1000 cycles at 1.0 A g and superior rate capability (368.8 mA h g at 20.0 A g), with Na metal as the counter electrode. Moreover, the assembled full cell shows a high energy density of 214.4 W h kg. This work provides insight on heteroatom doping for optimizing the rate capability of TMS anodes.
过渡金属硫化物(TMSs)因其低成本和高理论储钠容量而备受关注。然而,TMSs存在体积变化大以及离子/电子电导率较低等关键问题,这是其在钠离子电池中实际应用面临的主要挑战。在此,我们构建了一种包覆在氮掺杂碳壳中的钴掺杂硫化锌(记为Co-ZnS@NC),它有效缓解了体积膨胀并提升了储钠性能。机理分析和离子扩散动力学分析(GITT、EIS和CV)证明,Co-ZnS@NC中的内建电场和缓冲碳层加速了Na的扩散,优化了循环寿命和倍率性能。所制备的Co-ZnS@NC在以金属Na为对电极、1.0 A g的电流密度下循环1000次后具有456.8 mA h g的高可逆容量,以及优异的倍率性能(在20.0 A g时为368.8 mA h g)。此外,组装的全电池显示出214.4 W h kg的高能量密度。这项工作为杂原子掺杂优化TMS阳极的倍率性能提供了见解。