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用于能量转换与存储的工程二维过渡金属二硫属化物

Engineered Two-Dimensional Transition Metal Dichalcogenides for Energy Conversion and Storage.

作者信息

Roy Soumyabrata, Joseph Antony, Zhang Xiang, Bhattacharyya Sohini, Puthirath Anand B, Biswas Abhijit, Tiwary Chandra Sekhar, Vajtai Robert, Ajayan Pulickel M

机构信息

Department of Materials Science and NanoEngineering, Rice University, Houston, Texas 77005, United States.

Department of Sustainable Energy Engineering, Indian Institute of Technology Kanpur, Kanpur, Uttar Pradesh 208016, India.

出版信息

Chem Rev. 2024 Aug 28;124(16):9376-9456. doi: 10.1021/acs.chemrev.3c00937. Epub 2024 Jul 23.

DOI:10.1021/acs.chemrev.3c00937
PMID:39042038
Abstract

Designing efficient and cost-effective materials is pivotal to solving the key scientific and technological challenges at the interface of energy, environment, and sustainability for achieving NetZero. Two-dimensional transition metal dichalcogenides (2D TMDs) represent a unique class of materials that have catered to a myriad of energy conversion and storage (ECS) applications. Their uniqueness arises from their ultra-thin nature, high fractions of atoms residing on surfaces, rich chemical compositions featuring diverse metals and chalcogens, and remarkable tunability across multiple length scales. Specifically, the rich electronic/electrical, optical, and thermal properties of 2D TMDs have been widely exploited for electrochemical energy conversion (e.g., electrocatalytic water splitting), and storage (e.g., anodes in alkali ion batteries and supercapacitors), photocatalysis, photovoltaic devices, and thermoelectric applications. Furthermore, their properties and performances can be greatly boosted by judicious structural and chemical tuning through phase, size, composition, defect, dopant, topological, and heterostructure engineering. The challenge, however, is to design and control such engineering levers, optimally and specifically, to maximize performance outcomes for targeted applications. In this review we discuss, highlight, and provide insights on the significant advancements and ongoing research directions in the design and engineering approaches of 2D TMDs for improving their performance and potential in ECS applications.

摘要

设计高效且经济高效的材料对于解决能源、环境和可持续性交叉领域的关键科学技术挑战以实现净零排放至关重要。二维过渡金属二硫属化物(2D TMDs)是一类独特的材料,已被应用于众多能量转换和存储(ECS)应用中。它们的独特性源于其超薄的性质、表面上存在的高比例原子、具有多种金属和硫属元素的丰富化学成分以及在多个长度尺度上显著的可调性。具体而言,2D TMDs丰富的电子/电学、光学和热学性质已被广泛用于电化学能量转换(例如,电催化水分解)、存储(例如,碱离子电池和超级电容器中的阳极)、光催化、光伏器件和热电应用。此外,通过相、尺寸、组成、缺陷、掺杂剂、拓扑和异质结构工程进行明智的结构和化学调控,可以极大地提高它们的性能和表现。然而,挑战在于最优且具体地设计和控制这些工程手段,以最大化针对特定应用的性能结果。在本综述中,我们讨论、强调并提供关于二维过渡金属二硫属化物设计和工程方法方面的重大进展以及正在进行的研究方向的见解,以提高它们在能量转换和存储应用中的性能和潜力。

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