纳米碳复合材料在电能存储与转换中的应用现状综述

Heri Rustamaji , Tirto Prakoso , Hary Devianto , Pramujo Widiatmoko , Pramahadi Febriyanto , Simparmin br Ginting , Darmansyah Darmansyah , Martinus Martinus
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引用次数: 0

摘要

纳米碳复合材料已经成为能量转换和存储的先锋技术,重新定义了电池、超级电容器和太阳能电池的设计范式。研究人员通过利用石墨、富勒烯、石墨烯和碳纳米管等材料的特殊特性,正在策划能量存储动力学的范式转变。纳米碳的固有属性,包括卓越的导电性、机械弹性和广阔的表面积,使它们成为增强能量存储和转换设备性能指标的关键成分。在电池领域,纳米碳复合材料可以提高能量密度,加速充放电动力学,延长循环寿命。同时,将它们集成到超级电容器中可以增强能量和功率密度,促进快速的能量转移和存储。这些复合材料的延展性和轻量化引入了一种变革性的尺寸,使制造紧凑、柔韧和高效的储能设备成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent status of application of nanocarbon composite materials for electric energy storage and conversion: A mini review
Nanocarbon composites have emerged as a vanguard technology in energy conversion and storage, redefining the paradigms of battery, supercapacitor, and solar cell design. Researchers are orchestrating a paradigm shift in energy storage dynamics by leveraging the exceptional characteristics of materials such as graphite, fullerene, graphene, and carbon nanotubes. The intrinsic attributes of nanocarbon, including superior electrical conductivity, mechanical resilience, and expansive surface areas, delineate them as pivotal constituents for augmenting the performance metrics of energy storage and conversion devices. In the domain of batteries, nanocarbon composites engender heightened energy density, accelerated charge/discharge kinetics, and prolonged cycle life. Concurrently, their integration into supercapacitors begets augmented energy and power densities, facilitating swift energy transference and storage. These composites' malleable and lightweight nature introduces a transformative dimension, enabling the fabrication of compact, pliable, and highly efficient energy storage apparatus.
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