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注入水凝胶的晶格制成的抗冲击超级电容器。

Impact-resistant supercapacitor by hydrogel-infused lattice.

作者信息

Zhou Shixiang, Zhao Yijing, Zhang Kaixi, Xun Yanran, Tao Xueyu, Yan Wentao, Zhai Wei, Ding Jun

机构信息

Department of Materials Science and Engineering, National University of Singapore, Singapore, 117575, Singapore.

Department of Mechanical Engineering, National University of Singapore, Singapore, 117575, Singapore.

出版信息

Nat Commun. 2024 Aug 1;15(1):6481. doi: 10.1038/s41467-024-50707-0.

Abstract

The safety of energy storage devices is increasingly crucial due to the growing requirements for application under harsh conditions. Effective methods for enhancing robustness without compromising functionality are necessary. Here we present an impact-resistant, ready-to-use supercapacitor constructed from self-healable hydrogel electrolyte-infused lattice electrodes. Three-dimensional-printed carbon-coated silicon oxycarbide current collectors provide mechanical protection, with compressive stress, Young's modulus, and energy absorption up to 70.61 MPa, 2.75 GPa, and 92.15 kJ/m, respectively. Commercially viable polyaniline and self-healable polyvinyl alcohol hydrogel are used as active coatings and electrolytes. I-wrapped package structured supercapacitor electrode exhibits a static specific capacitance of 585.51 mF/cm at 3 mA/cm, with an energy density of 97.63 μWh/cm at a power density of 0.5 mW/cm. It maintains operational integrity under extreme conditions, including post-impact with energy of 0.3 J/cm, dynamic loading ranging from 0 to 18.83 MPa, and self-healing after electrolyte damage, demonstrating its promise for applications in extreme environments.

摘要

由于在恶劣条件下应用的要求不断提高,储能设备的安全性变得越来越关键。需要有在不影响功能的情况下增强鲁棒性的有效方法。在此,我们展示了一种由注入自愈合水凝胶电解质的晶格电极构建的抗冲击、即用型超级电容器。三维打印的碳包覆碳化硅集流体提供机械保护,其压缩应力、杨氏模量和能量吸收分别高达70.61MPa、2.75GPa和92.15kJ/m。商业上可行的聚苯胺和自愈合聚乙烯醇水凝胶用作活性涂层和电解质。I包裹封装结构的超级电容器电极在3mA/cm时表现出585.51mF/cm的静态比电容,在功率密度为0.5mW/cm时能量密度为97.63μWh/cm。它在极端条件下保持运行完整性,包括在能量为0.3J/cm的冲击后、0至18.83MPa的动态加载以及电解质损坏后的自愈合,证明了其在极端环境中的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22c7/11294459/b63ea6393f77/41467_2024_50707_Fig1_HTML.jpg

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