Browne Stephen, Waghmare Umesh V, Singh Anjali
Center for Study of Science, Technology & Policy (CSTEP), Bangalore-560094, India.
Theoretical Sciences Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Bangalore-560064, India.
Nanotechnology. 2022 Apr 20;33(27). doi: 10.1088/1361-6528/ac61c9.
With an increasing demand for large-scale energy storage systems, there is a need for novel electrode materials to store energy in batteries efficiently. 2D materials are promising as electrode materials for battery applications. Despite their excellent properties, none of the available single-phase 2D materials offers a combination of properties required for maximizing energy density, power density, and cycle life. This article discusses how stacking distinct 2D materials into a 2D heterostructure may open up new possibilities for battery electrodes, combining favourable characteristics and overcoming the drawbacks of constituent 2D layers. Computational studies are crucial to advancing this field rapidly with first-principles simulations of various 2D heterostructures forming the basis for such investigations that offer insights into processes that are hard to determine otherwise. We present a perspective on the current methodology, along with a review of the known 2D heterostructures as anodes and their potential for Li and Na-ion battery applications. 2D heterostructures showcase excellent tunability with different compositions. However, each of them has distinct properties, with its own set of challenges and opportunities for application in batteries. We highlight the current status and prospects to stimulate research into designing new 2D heterostructures for battery applications.
随着对大规模储能系统的需求不断增加,需要新型电极材料来高效地在电池中存储能量。二维材料有望成为电池应用的电极材料。尽管它们具有优异的性能,但现有的单相二维材料都无法提供最大化能量密度、功率密度和循环寿命所需的综合性能。本文讨论了将不同的二维材料堆叠成二维异质结构如何为电池电极开辟新的可能性,结合有利特性并克服组成二维层的缺点。计算研究对于通过对各种二维异质结构进行第一性原理模拟来快速推进该领域至关重要,这些模拟为此类研究提供了基础,能够深入了解难以通过其他方式确定的过程。我们阐述了当前方法的观点,并综述了作为阳极的已知二维异质结构及其在锂离子和钠离子电池应用中的潜力。二维异质结构在不同组成下展现出出色的可调性。然而,它们各自具有独特的性能,在电池应用中有着自身的一系列挑战和机遇。我们强调当前的现状和前景,以激发对设计用于电池应用的新型二维异质结构的研究。