Recent application of carbon nanotubes in energy storage and conversion devices

IF 3.1 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Abdulazeez Tunbosun Lawal
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Abstract

Worldwide energy demand is increasing at an unprecedented rate due to rapid population growth and industrialization. Hence, renewable and environmentally friendly energy production platforms are more needed than ever as alternatives to fossil fuels, which is a critical societal dilemma. The superior mechanical, electrical, thermal, and electrochemical properties of Carbon nanotubes (CNTs) make them a promising next-generation material for energy conversion and storage applications. CNTs can be synthesized using various methods, such as chemical vapor deposition, laser ablation, and carbon arc discharge. Each of their properties makes them an ideal candidate for various energy conversion and storage devices. Moreover, the performance of CNTs in these energy devices can be improved by surface functionalization, heteroatom doping, structural modification, introductions of defects, promoting transport hydrodynamic processes, and resolving existing degradation issues, such as catalyst poisoning and precipitation. Owing to their highest specific capacitance, enhanced rate capability, and extended cycle life, CNTs have been used in electrochemical energy storage systems, such as supercapacitors, batteries, and supercapattery, as well in energy conversion platforms, such as fuel cells, microbial fuel cells, and solar cells. Since CNTs are emerging as a technologically promising multi-functional nanomaterial due to their unique nanostructure and physical and chemical properties, this review also covers the challenges in realizing the full potential of CNTs for our energy storage and conversion technologies, together with future research directions needed to optimise their structure, properties and functionalisation.
碳纳米管在能量存储和转换器件中的最新应用
由于人口的快速增长和工业化,世界范围内的能源需求正以前所未有的速度增长。因此,可再生和环保的能源生产平台比以往任何时候都更需要作为化石燃料的替代品,这是一个严重的社会困境。碳纳米管(CNTs)优异的机械、电学、热学和电化学性能使其成为新一代能量转换和存储材料。制备CNTs的方法多种多样,如化学气相沉积、激光烧蚀、碳弧放电等。它们的每一种特性都使它们成为各种能量转换和存储设备的理想候选者。此外,可以通过表面功能化、杂原子掺杂、结构修饰、引入缺陷、促进输运流体动力学过程以及解决催化剂中毒和沉淀等降解问题来提高碳纳米管在这些能量器件中的性能。由于具有较高的比电容、更高的倍率和更长的循环寿命,CNTs已广泛应用于超级电容器、电池、超级电容器等电化学储能系统,以及燃料电池、微生物燃料电池、太阳能电池等能量转换平台。由于碳纳米管具有独特的纳米结构和物理和化学性质,因此其作为一种技术上有前景的多功能纳米材料正在兴起,本综述还涵盖了在实现碳纳米管在我们的能量存储和转换技术中的全部潜力方面所面临的挑战,以及优化其结构、性质和功能化所需的未来研究方向。
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
Carbon Trends
Carbon Trends Materials Science-Materials Science (miscellaneous)
CiteScore
4.60
自引率
0.00%
发文量
88
审稿时长
77 days
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