Xie Xingchen, Wang Ni, Sun Baolong, Zhong Li, He Lixiang, Komarneni Sridhar, Hu Wencheng
School of Materials and Energy, University of Electronic Science & Technology of China, Chengdu 611731, PR China.
School of Materials and Energy, University of Electronic Science & Technology of China, Chengdu 611731, PR China; Materials Research Institute and Department of Ecosystem Science and Management, 204 Energy and the Environment Laboratory, The Pennsylvania State University, University Park, PA 16802, USA.
J Colloid Interface Sci. 2023 Nov 15;650(Pt A):456-465. doi: 10.1016/j.jcis.2023.06.193. Epub 2023 Jun 29.
Transition metal dichalcogenides (TMDs) as materials for aqueous zinc-ion batteries (ZIBs) have received a lot of interest because of their large theoretical capacity and unique layered structure. However, the sluggish kinetics and inferior cyclic stability limit the usefulness of ZIBs. In the present investigation, the interlayer spacing enlarged MoSe hollow nanospheres comprised of nanosheets with ultrathin shells have been successfully synthesized through a combined strategy of template assistance and anion-exchange reaction. The hierarchical ultrathin nanosheets and hollow structure effectively suppress the agglomeration of pure nanosheets and ameliorate volume fluctuations induced by ion migration during (dis)charging/charging. The interlayer expansion provides good channels for the transport of Zn ions and speeds up the insertion/extraction of Zn. In addition, in-situ carbon modification can significantly improve electronic conductivity. Therefore, the electrode prepared from MoSe hollow nanospheres with enlarged interlayer spacing not only exhibits outstanding cycle stability (capacity retention of 94.5% after 1600 cycles) but also exhibits high-rate capability (266.1 mA h g at 0.1 A g and 203.6 mA h g at 3 A g). This work could provide new insights into the design of cathode using TMDs of hollow structure for Zn storage.
过渡金属二硫属化物(TMDs)作为水系锌离子电池(ZIBs)的材料,因其具有较大的理论容量和独特的层状结构而备受关注。然而,缓慢的动力学和较差的循环稳定性限制了ZIBs的实用性。在本研究中,通过模板辅助和阴离子交换反应相结合的策略,成功合成了由具有超薄壳层的纳米片组成的层间距扩大的MoSe空心纳米球。分级超薄纳米片和空心结构有效地抑制了纯纳米片的团聚,并改善了充放电过程中离子迁移引起的体积波动。层间扩展为锌离子的传输提供了良好的通道,并加速了锌的嵌入/脱出。此外,原位碳修饰可以显著提高电子导电性。因此,由层间距扩大的MoSe空心纳米球制备的电极不仅表现出出色的循环稳定性(1600次循环后容量保持率为94.5%),而且还表现出高倍率性能(在0.1 A g下为266.1 mA h g,在3 A g下为203.6 mA h g)。这项工作可为设计用于锌存储的具有空心结构的TMDs阴极提供新的见解。