Telluride-Based Materials: A Promising Route for High Performance Supercapacitors

IF 7 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Abdul Jabbar Khan, Muhammad Sajjad, Shaukat Khan, Muhammad Khan, Abdul Mateen, Syed Shaheen Shah, Numan Arshid, Liang He, Zeyu Ma, Ling Gao, Guowei Zhao
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Abstract

As supercapacitor (SC) technology continues to evolve, there is a growing need for electrode materials with high energy/power densities and cycling stability. However, research and development of electrode materials with such characteristics is essential for commercialization the SC. To meet this demand, the development of superior electrode materials has become an increasingly critical step. The electrochemical performance of SCs is greatly influenced by various factors such as the reaction mechanism, crystal structure, and kinetics of electron/ion transfer in the electrodes, which have been challenging to address using previously investigated electrode materials like carbon and metal oxides/sulfides. Recently, tellurium and telluride-based materials have garnered increasing interest in energy storage technology owing to their high electronic conductivity, favorable crystal structure, and excellent volumetric capacity. This review provides a comprehensive understanding of the fundamental properties and energy storage performance of tellurium- and Te-based materials by introducing their physicochemical properties. First, we elaborate on the significance of tellurides. Next, the charge storage mechanism of functional telluride materials and important synthesis strategies are summarized. Then, research advancements in metal and carbon-based telluride materials, as well as the effectiveness of tellurides for SCs, were analyzed by emphasizing their essential properties and extensive advantages. Finally, the remaining challenges and prospects for improving the telluride-based supercapacitive performance are outlined.

Abstract Image

Abstract Image

碲基材料:高性能超级电容器的发展前景。
随着超级电容器(SC)技术的不断发展,对具有高能量/功率密度和循环稳定性的电极材料的需求日益增长。然而,研究和开发具有这种特性的电极材料对于SC的商业化至关重要。为了满足这一需求,开发优质电极材料已成为越来越关键的一步。SCs的电化学性能受到多种因素的影响,如反应机制、晶体结构和电极中电子/离子转移动力学,这些都是使用碳和金属氧化物/硫化物等先前研究过的电极材料来解决的挑战。近年来,碲和碲基材料由于其高电子导电性、良好的晶体结构和优异的体积容量而引起了人们对储能技术越来越多的兴趣。本文通过介绍碲基和碲基材料的物理化学性质,对碲基和碲基材料的基本性质和储能性能进行了全面的介绍。首先,我们阐述了碲化物的意义。其次,综述了功能碲化物材料的电荷存储机理和重要的合成策略。然后,分析了金属基和碳基碲化材料的研究进展,以及碲化材料用于超导材料的有效性,强调了它们的基本性质和广泛优势。最后,概述了碲基超级电容性能改进的挑战和前景。
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 record
Chemical record 化学-化学综合
CiteScore
11.00
自引率
3.00%
发文量
188
审稿时长
>12 weeks
期刊介绍: The Chemical Record (TCR) is a "highlights" journal publishing timely and critical overviews of new developments at the cutting edge of chemistry of interest to a wide audience of chemists (2013 journal impact factor: 5.577). The scope of published reviews includes all areas related to physical chemistry, analytical chemistry, inorganic chemistry, organic chemistry, polymer chemistry, materials chemistry, bioorganic chemistry, biochemistry, biotechnology and medicinal chemistry as well as interdisciplinary fields. TCR provides carefully selected highlight papers by leading researchers that introduce the author''s own experimental and theoretical results in a framework designed to establish perspectives with earlier and contemporary work and provide a critical review of the present state of the subject. The articles are intended to present concise evaluations of current trends in chemistry research to help chemists gain useful insights into fields outside their specialization and provide experts with summaries of recent key developments.
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