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采用水性石墨烯导电油墨丝网印刷的高功率密度平面微型超级电容器

Planar Micro-Supercapacitors with High Power Density Screen-Printed by Aqueous Graphene Conductive Ink.

作者信息

Wang Youchang, Zhang Xiaojing, Zhu Yuwei, Li Xiaolu, Shen Zhigang

机构信息

Beijing Key Laboratory for Powder Technology Research and Development, Beihang University, Beijing 100191, China.

School of Aeronautic Science and Engineering, Beihang University, Beijing 100191, China.

出版信息

Materials (Basel). 2024 Aug 13;17(16):4021. doi: 10.3390/ma17164021.

Abstract

Simple and scalable production of micro-supercapacitors (MSCs) is crucial to address the energy requirements of miniature electronics. Although significant advancements have been achieved in fabricating MSCs through solution-based printing techniques, the realization of high-performance MSCs remains a challenge. In this paper, graphene-based MSCs with a high power density were prepared through screen printing of aqueous conductive inks with appropriate rheological properties. High electrical conductivity (2.04 × 10 S∙m) and low equivalent series resistance (46.7 Ω) benefiting from the dense conductive network consisting of the mesoporous structure formed by graphene with carbon black dispersed as linkers, as well as the narrow finger width and interspace (200 µm) originating from the excellent printability, prompted the fully printed MSCs to deliver high capacitance (9.15 mF∙cm), energy density (1.30 µWh∙cm) and ultrahigh power density (89.9 mW∙cm). Notably, the resulting MSCs can effectively operate at scan rates up to 200 V∙s, which surpasses conventional supercapacitors by two orders of magnitude. In addition, the MSCs demonstrate excellent cycling stability (91.6% capacity retention and ~100% Coulombic efficiency after 10,000 cycles) and extraordinary mechanical properties (92.2% capacity retention after 5000 bending cycles), indicating their broad application prospects in flexible wearable/portable electronic systems.

摘要

微超级电容器(MSCs)的简单且可扩展生产对于满足微型电子产品的能源需求至关重要。尽管通过基于溶液的印刷技术在制造MSCs方面已取得显著进展,但实现高性能的MSCs仍然是一项挑战。在本文中,通过丝网印刷具有适当流变特性的水性导电油墨制备了具有高功率密度的基于石墨烯的MSCs。得益于由石墨烯形成的介孔结构与作为连接剂分散的炭黑组成的致密导电网络,以及源自优异可印刷性的窄指宽和间隙(200 µm),高电导率(2.04×10 S∙m)和低等效串联电阻(46.7 Ω)促使全印刷的MSCs具有高电容(9.15 mF∙cm)、能量密度(1.30 µWh∙cm)和超高功率密度(89.9 mW∙cm)。值得注意的是,所得的MSCs能够在高达200 V∙s的扫描速率下有效运行,这比传统超级电容器高出两个数量级。此外,MSCs表现出优异的循环稳定性(10000次循环后容量保持率为91.6%,库仑效率约为100%)和非凡的机械性能(5000次弯曲循环后容量保持率为92.2%),表明它们在柔性可穿戴/便携式电子系统中具有广阔的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58b5/11356036/3cac4b2b2b1e/materials-17-04021-g001.jpg

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