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用于钠存储应用的多维纳米结构锑的简易定制

Facile Tailoring of Multidimensional Nanostructured Sb for Sodium Storage Applications.

作者信息

Li Haomiao, Wang Kangli, Zhou Min, Li Wei, Tao Hongwei, Wang Ruxing, Cheng Shijie, Jiang Kai

出版信息

ACS Nano. 2019 Aug 27;13(8):9533-9540. doi: 10.1021/acsnano.9b04520. Epub 2019 Aug 13.

Abstract

Nanoengineering of metal electrodes are of great importance for improving the energy density of alkali-ion batteries, which have been deemed one of most effective tools for addressing the poor cycle stability of metallic anodes. However, the practical application of nanostructured electrodes in batteries is still challenged by a lack of efficient, low-cost, and scalable preparation methods. Herein, we propose a facile chemical dealloying approach to the tunable preparation of multidimensional Sb nanostructures. Depending on dealloying reaction kinetics regulated by different solvents, zero-dimensional Sb nanoparticles (Sb-NP), two-dimensional Sb nanosheets (Sb-NS), and three-dimensional nanoporous Sb are controllably prepared via etching Li-Sb alloys in HO, HO-EtOH, and EtOH, respectively. Morphological evolution mechanisms of the various Sb nanostructures are analyzed by scanning electron microscopy, transmission electron microscopy, and X-ray diffraction measurements. When applied as anodes for sodium ion batteries (SIBs), the as-prepared Sb-NS electrodes without any chemical modifications exhibit high reversible capacity of 620 mAh g and retain 90.2% of capacity after 100 cycles at 100 mA g. The excellent Na storage performance observed is attributable to the two-dimensional nanostructure, which ensures high degrees of Na accessibility, robust structural integrity, and rapid electrode transport. This facile and tunable approach can broaden ways of developing high performance metal electrodes with designed nanostructures for electrochemical energy storage and conversion applications.

摘要

金属电极的纳米工程对于提高碱离子电池的能量密度至关重要,碱离子电池被认为是解决金属负极循环稳定性差问题的最有效工具之一。然而,纳米结构电极在电池中的实际应用仍然面临着缺乏高效、低成本且可扩展的制备方法的挑战。在此,我们提出一种简便的化学脱合金方法来可调谐地制备多维Sb纳米结构。根据不同溶剂调节的脱合金反应动力学,分别通过在HO、HO - EtOH和EtOH中蚀刻Li - Sb合金,可控地制备出零维Sb纳米颗粒(Sb - NP)、二维Sb纳米片(Sb - NS)和三维纳米多孔Sb。通过扫描电子显微镜、透射电子显微镜和X射线衍射测量分析了各种Sb纳米结构的形态演变机制。当用作钠离子电池(SIB)的负极时,所制备的未经任何化学修饰的Sb - NS电极表现出620 mAh g的高可逆容量,在100 mA g下循环100次后仍保留90.2%的容量。观察到的优异钠存储性能归因于二维纳米结构,它确保了高度的钠可达性、稳健的结构完整性和快速的电极传输。这种简便且可调谐的方法可以拓宽开发具有设计纳米结构的高性能金属电极用于电化学能量存储和转换应用的途径。

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