Qijun Tong, Zhihao Zhang, Qitian Luo, Kai Gu, Weiqing Yang
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More importantly, both the isothermal desorption/adsorption and high-pressure mercury intrusion porosimetry methods were employed to synergistically uncover the microscopic surface carbon network stacking mechanism and the macroscopic carbon skeleton densification assembly mechanism. The highly-densifying skeleton features and high mesoporous ratio properties were proved to be co-existed in HDMC, which is in favour of rapidly ion/electron transferring toward electrochemically-improving power behavior of HDMC. A combination of high tap density (0.387 g cm<sup>−3</sup>) and ideal microporous-mesoporous system (23.1 % proportion of mesoporous) have taken this HDMC to provide a super-high power density (33.5 kW kg<sup>−1</sup>) and a high volume power density (9.37 kW L<sup>−1</sup>) for HDMC-based supercapacitor, more than those of commercial YP-50F (14.9 kW kg<sup>−1</sup> @ 4.63 kW L<sup>−1</sup>). 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引用次数: 0
摘要
商用碳基超级电容器具有高功率能力(~5 kW kg - 1),但仍无法满足特定功率型设备(>20 kW kg - 1)的超高功率要求,如轨道交通设施、电磁和激光设备。阐明功率型致密化碳的构效关系和电化学行为是克服合适的介孔比与高密度特性之间的矛盾,实现超高功率要求的关键。本文采用分层活化法制备了优化介孔比的分层致密介孔罗布麻炭(HDMC)。更重要的是,采用等温解吸/吸附和高压压汞孔隙法协同揭示微观表面碳网络堆积机制和宏观碳骨架致密组装机制。高密度骨架特征和高介孔比特性在HDMC中同时存在,这有利于离子/电子的快速转移,从而提高HDMC的电化学性能。高分接密度(0.387 g cm−3)和理想的微孔-介孔系统(23.1%的介孔比例)的结合使HDMC为基于HDMC的超级电容器提供了超高的功率密度(33.5 kW kg−1)和高体积功率密度(9.37 kW L−1),超过了商用YP-50F (14.9 kW kg−1 @ 4.63 kW L−1)。因此,本工作提供了一种将介孔和致密性结合在一起的协同策略,并揭示了其电化学行为对功率型超级电容器的进一步应用。
Regulating and Unraveling Electrochemical Behavior of Hierarchically-Densifying Mesoporous Apocynum Carbon for High performance Supercapacitor
The commercial carbon-based supercapacitor with high power ability (~5 kW kg−1) is still unable to fulfill the superhigh power requirement of specific power-type equipments (>20 kW kg−1), such as rail transit facilities, electromagnetic and laser equipment. To unravel the structure-activity relationship and electrochemical behavior of power-type densifying carbon is a key to overcome the contradiction of the suitable mesoporous ratio and highly-densifying features toward the superhigh power requirement. Here, we built the hierarchically-densifying mesoporous apocynum carbon (HDMC) with optimized mesoporous ratio by hierarchical activation method. More importantly, both the isothermal desorption/adsorption and high-pressure mercury intrusion porosimetry methods were employed to synergistically uncover the microscopic surface carbon network stacking mechanism and the macroscopic carbon skeleton densification assembly mechanism. The highly-densifying skeleton features and high mesoporous ratio properties were proved to be co-existed in HDMC, which is in favour of rapidly ion/electron transferring toward electrochemically-improving power behavior of HDMC. A combination of high tap density (0.387 g cm−3) and ideal microporous-mesoporous system (23.1 % proportion of mesoporous) have taken this HDMC to provide a super-high power density (33.5 kW kg−1) and a high volume power density (9.37 kW L−1) for HDMC-based supercapacitor, more than those of commercial YP-50F (14.9 kW kg−1 @ 4.63 kW L−1). Therefore, this work provides a synergistic strategy to incorporate the properties of mesoporous and densifying, and reveals its electrochemical behavior toward the further application of power-type supercapacitors.
期刊介绍:
Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.