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MXene作为高性能锂离子电池的有前景的负极材料:综述

MXene as Promising Anode Material for High-Performance Lithium-Ion Batteries: A Comprehensive Review.

作者信息

Chy Mohammad Nezam Uddin, Rahman Md Arafat, Kim Jin-Hyuk, Barua Nirjhor, Dujana Wasif Abu

机构信息

Department of Mechanical Engineering, Chittagong University of Engineering & Technology, Chittagong 4349, Bangladesh.

Carbon Neutral Technology R&D Department, Korea Institute of Industrial Technology, Cheonan 31056, Republic of Korea.

出版信息

Nanomaterials (Basel). 2024 Mar 31;14(7):616. doi: 10.3390/nano14070616.

Abstract

Broad adoption has already been started of MXene materials in various energy storage technologies, such as super-capacitors and batteries, due to the increasing versatility of the preparation methods, as well as the ongoing discovery of new members. The essential requirements for an excellent anode material for lithium-ion batteries (LIBs) are high safety, minimal volume expansion during the lithiation/de-lithiation process, high cyclic stability, and high Li storage capability. However, most of the anode materials for LIBs, such as graphite, SnO, Si, Al, and LiTiO, have at least one issue. Hence, creating novel anode materials continues to be difficult. To date, a few MXenes have been investigated experimentally as anodes of LIBs due to their distinct active voltage windows, large power capabilities, and longer cyclic life. The objective of this review paper is to provide an overview of the synthesis and characterization characteristics of the MXenes as anode materials of LIBs, including their discharge/charge capacity, rate performance, and cycle ability. In addition, a summary of the potential outlook for developments of these materials as anodes is provided.

摘要

由于制备方法的通用性不断提高以及新成员的不断发现,MXene材料已开始在各种能量存储技术中广泛应用,如超级电容器和电池。锂离子电池(LIBs)优异负极材料的基本要求是高安全性、在锂化/脱锂过程中体积膨胀最小、高循环稳定性和高锂存储能力。然而,大多数LIBs负极材料,如石墨、SnO、Si、Al和LiTiO,至少存在一个问题。因此,开发新型负极材料仍然困难。迄今为止,由于其独特的活性电压窗口、大功率能力和更长的循环寿命,一些MXene已作为LIBs负极进行了实验研究。本文综述的目的是概述MXene作为LIBs负极材料的合成和表征特性,包括其充放电容量、倍率性能和循环能力。此外,还总结了这些材料作为负极的潜在发展前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4ac/11013291/5378cc517c7e/nanomaterials-14-00616-g001.jpg

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