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首页> 外文期刊>Nano-Micro Letters >Recent Developments of Transition Metal Compounds-Carbon Hybrid Electrodes for High Energy/Power Supercapacitors
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Recent Developments of Transition Metal Compounds-Carbon Hybrid Electrodes for High Energy/Power Supercapacitors

机译:高能/功率超级电容器的过渡金属化合物 - 碳混合电极的最新进展

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Due to their rapid power delivery, fast charging, and long cycle life, supercapacitors have become an important energy storage technology recently. However, to meet the continuously increasing demands in the fields of portable electronics, transportation, and future robotic technologies, supercapacitors with higher energy densities without sacrificing high power densities and cycle stabilities are still challenged. Transition metal compounds (TMCs) possessing high theoretical capacitance are always used as electrode materials to improve the energy densities of supercapacitors. However, the power densities and cycle lives of such TMCs-based electrodes are still inferior due to their low intrinsic conductivity and large volume expansion during the charge/discharge process, which greatly impede their large-scale applications. Most recently, the ideal integrating of TMCs and conductive carbon skeletons is considered as an effective solution to solve the above challenges. Herein, we summarize the recent developments of TMCs/carbon hybrid electrodes which exhibit both high energy/power densities from the aspects of structural design strategies, including conductive carbon skeleton, interface engineering, and electronic structure. Furthermore, the remaining challenges and future perspectives are also highlighted so as to provide strategies for the high energy/power TMCs/carbon-based supercapacitors.
机译:由于其快速的动力输送,快速充电和长循环寿命,最近的超级电容器已成为重要的能量存储技术。然而,为了满足便携式电子,运输和未来机器人技术领域的不断增加的需求,在不牺牲高功率密度和循环稳定性的情况下具有更高能量密度的超级电容器仍然受到挑战。具有高理论电容的过渡金属化合物(TMC)始终用作电极材料以改善超级电容器的能量密度。然而,由于其在充电/放电过程中的低固有电导率和大容量膨胀,这种基于TMC的电极的功率密度和循环寿命仍然差异,这极大地阻碍了其大规模应用。最近,TMC和导电碳骨架的理想整合被认为是解决上述挑战的有效解决方案。在此,我们总结了从结构设计策略的方面表现出高能量/功率密度的TMC /碳混合电极的最新发展,包括导电碳骨架,界面工程和电子结构。此外,还强调了剩余的挑战和未来的观点,以便为高能量/功率TMC /碳基超级电容器提供策略。

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