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用于快速离子扩散超级电容器的致密石墨烯薄膜中的微裂纹阵列

Microcrack Arrays in Dense Graphene Films for Fast-Ion-Diffusion Supercapacitors.

作者信息

Li Congming, Li Xiangming, Liu Gangqiang, Yu Wei, Yang Zhengjie, Wang Liang, Wang Chao, Yang Qingzhen, Xiao Ronglin, Huang Fei, Tian Hongmiao, Wang Chunhui, Chen Xiaoliang, Shao Jinyou

机构信息

Micro-/Nano-technology Research Center, State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.

Frontier Institute of Science and Technology, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.

出版信息

Small. 2023 Aug;19(33):e2301533. doi: 10.1002/smll.202301533. Epub 2023 Mar 27.

Abstract

Laminated graphene film has great potential in compact high-power capacitive energy storage owing to the high bulk density and opened architecture. However, the high-power capability is usually limited by tortuous cross-layer ion diffusion. Herein, microcrack arrays are fabricated in graphene films as fast ion diffusion channels, converting tortuous diffusion into straightforward diffusion while maintaining a high bulk density of 0.92 g cm . Films with optimized microcrack arrays exhibit sixfold improved ion diffusion coefficient and high volumetric capacitance of 221 F cm (240 F g ), representing a critical breakthrough in optimizing ion diffusion toward compact energy storage. This microcrack design is also efficient for signal filtering. Microcracked graphene-based supercapacitor with 30 µg cm  mass loading exhibits characteristic frequency up to 200 Hz with voltage window up to 4 V, showing high promise for compact, high-capacitance alternating current (AC) filtering. Moreover, a renewable energy system is conducted using microcrack-arrayed graphene supercapacitors as filter-capacitor and energy buffer, filtering and storing the 50 Hz AC electricity from a wind generator into the constant direct current, stably powering 74 LEDs, demonstrating enormous potential in practical applications. More importantly, this microcracking approach is roll-to-roll producible, which is cost-effective and highly promising for large-scale manufacture.

摘要

层压石墨烯薄膜由于具有高堆积密度和开放的结构,在紧凑型高功率电容式储能方面具有巨大潜力。然而,其高功率性能通常受到曲折的跨层离子扩散的限制。在此,在石墨烯薄膜中制备微裂纹阵列作为快速离子扩散通道,将曲折扩散转化为直接扩散,同时保持0.92 g/cm³的高堆积密度。具有优化微裂纹阵列的薄膜表现出提高了六倍的离子扩散系数和221 F/cm³(240 F/g)的高体积电容,这代表了在优化离子扩散以实现紧凑型储能方面的关键突破。这种微裂纹设计在信号滤波方面也很有效。质量负载为30 μg/cm²的微裂纹石墨烯基超级电容器在高达4 V的电压窗口下表现出高达200 Hz的特征频率,显示出在紧凑型、高电容交流(AC)滤波方面的巨大潜力。此外,利用微裂纹阵列石墨烯超级电容器作为滤波电容器和能量缓冲器构建了一个可再生能源系统,将来自风力发电机的50 Hz交流电滤波并存储为恒定直流电,稳定地为74个发光二极管供电,展示了其在实际应用中的巨大潜力。更重要的是,这种微裂纹方法可卷对卷生产,具有成本效益,在大规模制造方面极具前景。

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