Mukherjee Santanu, Ren Zhongkan, Singh Gurpreet
Department of Mechanical and Nuclear Engineering, Kansas State University, Manhattan, KS, 66506, USA.
Nanomicro Lett. 2018;10(4):70. doi: 10.1007/s40820-018-0224-2. Epub 2018 Oct 9.
Intensive research effort is currently focused on the development of efficient, reliable, and environmentally safe electrochemical energy storage systems due to the ever-increasing global energy storage demand. Li ion battery systems have been used as the primary energy storage device over the last three decades. However, low abundance and uneven distribution of lithium and cobalt in the earth crust and the associated cost of these materials, have resulted in a concerted effort to develop beyond lithium electrochemical storage systems. In the case of non-Li ion rechargeable systems, the development of electrode materials is a significant challenge, considering the larger ionic size of the metal-ions and slower kinetics. Two-dimensional (2D) materials, such as graphene, transition metal dichalcogenides, MXenes and phosphorene, have garnered significant attention recently due to their multi-faceted advantageous properties: large surface areas, high electrical and thermal conductivity, mechanical strength, etc. Consequently, the study of 2D materials as negative electrodes is of notable importance as emerging non-Li battery systems continue to generate increasing attention. Among these interesting materials, graphene has already been extensively studied and reviewed, hence this report focuses on 2D materials beyond graphene for emerging non-Li systems. We provide a comparative analysis of 2D material chemistry, structure, and performance parameters as anode materials in rechargeable batteries and supercapacitors.
由于全球储能需求不断增长,目前密集的研究工作集中在开发高效、可靠且环境安全的电化学储能系统上。在过去三十年中,锂离子电池系统一直被用作主要的储能设备。然而,地壳中锂和钴的储量低且分布不均以及这些材料的相关成本,促使人们齐心协力开发超越锂离子的电化学储能系统。在非锂离子可充电系统的情况下,考虑到金属离子的离子尺寸较大且动力学较慢,电极材料的开发是一项重大挑战。二维(2D)材料,如石墨烯、过渡金属二硫属化物、MXenes和磷烯,由于其多方面的优势特性:大表面积、高电导率和热导率、机械强度等,最近受到了广泛关注。因此,随着新兴的非锂电池系统继续受到越来越多的关注,研究二维材料作为负极具有重要意义。在这些有趣的材料中,石墨烯已经得到了广泛的研究和综述,因此本报告重点关注用于新兴非锂系统的超越石墨烯的二维材料。我们对二维材料作为可充电电池和超级电容器阳极材料的化学、结构和性能参数进行了比较分析。