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用于高钠存储的铵修饰硫化钒纳米片组装体的合成

Ammonium-Modified Synthesis of Vanadium Sulfide Nanosheet Assemblies toward High Sodium Storage.

作者信息

Liu Bolin, Wang Liqin, Zhu Youqi, Peng Hui, Du Changliang, Yang Xinyu, Zhao Quanqing, Hou Jianhua, Cao Chuanbao

机构信息

Research Center of Materials Science, Beijing Key Laboratory of Construction Tailorable Advanced Functional Materials and Green Applications, Beijing Institute of Technology, Beijing 100081, China.

Analysis and Testing Center, Shandong University of Technology, Zibo 255000, China.

出版信息

ACS Nano. 2022 Aug 23;16(8):12900-12909. doi: 10.1021/acsnano.2c05232. Epub 2022 Aug 1.

Abstract

The weak van der Waals interactions of the one-dimensional (1D) chainlike VS crystal structure can enable fast charge-transfer kinetics in metal ion batteries, but its potential has been rarely exploited in depth. Herein, a thermodynamics-driven morphology manipulation strategy is reported to tailor VS nanosheets into 3D hierarchical self-assembled architectures including nanospheres, hollow nanospheres, and nanoflowers. The ultrathin VS nanosheets are generated via 2D anisotropic growth by the strong driving force of coordination interaction from ammonium ions under microwave irradiation and then evolve into 3D sheet-assembled configurations by adjusting the thermodynamic factors of temperature and reaction time. The as-synthesized VS nanomaterials present good electrochemical performances as the anode materials for sodium-ion batteries. In particular, the hollow VS nanospheres show a specific capacity of 1226.7 mAh g at 200 mA g current density after 100 cycles. The hierarchical nanostructures with large specific surface area and structural stability can overcome the difficulty of sodium ions embedding into the bulk material interior and provide more reactive materials at the same material mass loading compared with other morphologies. Both experiment and DFT calculations suggest that VS nanosheets reduce reaction kinetic impediment of sodium ion in battery operating. This work demonstrates a way of the morphological design of 2D VS nanosheets and application in sodium ion storage.

摘要

一维(1D)链状VS晶体结构的弱范德华相互作用能够使金属离子电池具有快速的电荷转移动力学,但其潜力尚未得到深入挖掘。在此,报道了一种热力学驱动的形貌调控策略,可将VS纳米片剪裁成三维分级自组装结构,包括纳米球、中空纳米球和纳米花。超薄VS纳米片是在微波辐射下通过铵离子配位相互作用的强大驱动力经由二维各向异性生长生成的,然后通过调节温度和反应时间等热力学因素演变成三维片状组装结构。所合成的VS纳米材料作为钠离子电池的负极材料表现出良好的电化学性能。特别是,中空VS纳米球在200 mA g电流密度下经过100次循环后比容量为1226.7 mAh g 。与其他形貌相比,具有大比表面积和结构稳定性的分级纳米结构能够克服钠离子嵌入块状材料内部的困难,并在相同材料质量负载下提供更多活性材料。实验和密度泛函理论(DFT)计算均表明,VS纳米片降低了电池运行中钠离子的反应动力学阻碍。这项工作展示了一种二维VS纳米片的形貌设计方法及其在钠离子存储中的应用。

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