MXene-transition metal chalcogenide hybrid materials for supercapacitor applications

IF 4.2 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Chemical Communications Pub Date : 2025-03-27 Epub Date: 2025-03-26 DOI:10.1039/d5cc00223k
Gopinath Sahoo , Chandra Sekhar Rout
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Abstract

The rapid growth of technologies and miniaturization of electronic devices demand advanced the use of high-powered energy storage devices. The energy storage device are utilized in modern wearable electronics, stretchable screens, and electric vehicles. Due to their favorable electrochemical properties, nanomaterials have been used as electrodes for supercapacitors (SCs) with high power density, but they generally suffer from lower energy density than batteries. Compared to various nanomaterials, MXenes and transition metal chalcogenides (TMCs) have shown great potential for energy storage applications such as SCs. TMCs are gaining attention due to their stable electrochemical nature, adjustable surface activity, high electric conductivity, abundant chemically active sites, and stable cycling performance. However, the interlayer restacking and agglomeration of 2D materials limit their cycling performance. To overcome this, TMCs@MXene heterostructures have been developed, offering structurally stable electrodes with enhanced chemical active sites. In this review, we discuss recent advances in the development of different TMCs@MXene-based hybrids for the design of high performance SCs with improved specific capacitance, cycling life, energy density, and power density. The recent developments of this research field focusing on MXene-transition metal sulfides, MXene-transition metal selenides, and MXene-transition metal tellurides are elaborately discussed. Theoretical calculations carried out to understand the charge-storage mechanisms in these composites are reviewed. The importance of bimetallic TMCs and MXene heterostructure for enhanced energy storage is also highlighted.

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超级电容器用过渡金属硫族化物杂化材料。
技术的快速发展和电子设备的小型化要求推进大功率储能设备的使用。该储能装置用于现代可穿戴电子产品、可拉伸屏幕和电动汽车。由于其良好的电化学性能,纳米材料已被用作具有高功率密度的超级电容器(SCs)的电极,但其能量密度通常低于电池。与各种纳米材料相比,MXenes和过渡金属硫族化合物(TMCs)在储能方面表现出巨大的潜力。tmc由于其稳定的电化学性质、可调节的表面活性、高导电性、丰富的化学活性位点和稳定的循环性能而受到人们的关注。然而,二维材料的层间堆积和团聚限制了其循环性能。为了克服这个问题,TMCs@MXene异质结构已经被开发出来,提供结构稳定的电极和增强的化学活性位点。在这篇综述中,我们讨论了不同TMCs@MXene-based混合动力车的最新进展,用于设计具有改进比电容、循环寿命、能量密度和功率密度的高性能sc。本文重点讨论了近年来在过渡金属硫化物、过渡金属硒化物和过渡金属碲化物方面的研究进展。综述了为理解这些复合材料中的电荷存储机制而进行的理论计算。双金属tmc和MXene异质结构对增强储能的重要性也得到了强调。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Communications
Chemical Communications 化学-化学综合
CiteScore
8.60
自引率
4.10%
发文量
2705
审稿时长
1.4 months
期刊介绍: ChemComm (Chemical Communications) is renowned as the fastest publisher of articles providing information on new avenues of research, drawn from all the world''s major areas of chemical research.
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