Xu Yanfang, Pei Shaopeng, Yan Yushan, Wang Liyun, Xu Guangbiao, Yarlagadda Shridhar, Chou Tsu-Wei
College of Textiles, Donghua University, Shanghai 201620, P. R. China.
Department of Mechanical Engineering, University of Delaware, Newark, Delaware 19716, United States.
ACS Appl Mater Interfaces. 2021 Mar 17;13(10):11774-11782. doi: 10.1021/acsami.0c19550. Epub 2021 Mar 8.
This paper presents an investigation of the potential to use aligned discontinuous carbon fiber dry prepregs as electrodes in structural supercapacitors (SSCs). The high fiber-matrix interfacial bonding of the structural composite was achieved by adopting a solid polymer electrolyte, consisting of poly(vinylidene), lithium triflate, and epoxy. Processing of the SSC was carried out via dip-coating of the polymer electrolyte and then cured using a vacuum bag. The electrochemical performance of the SSCs was measured before and after mechanical loading. The microstructures of the SSCs as-fabricated and damaged under flexural loading were identified by μ-CT imaging. An SSC with a specific capacitance of 0.128 mF/cm (11.62 mF/g), a flexural strength of 47.49 MPa, and a flexural modulus of 8.48 GPa has been achieved, demonstrating significant improvements in mechanical properties over those of SSCs based on woven carbon fiber fabric-based electrodes. The mechanical behavior of the supercapacitors was evaluated by both quasi-static and cyclic flexural loading tests. The excellent electrochemical stability of the supercapacitors was validated by a capacitance retention of above 96% under galvanostatic charge-discharge cycling tests. The knowledge gained in this work will benefit future research in the optimization of SSC performance.
本文研究了将取向不连续碳纤维干预浸料用作结构超级电容器(SSC)电极的潜力。通过采用由聚偏二氟乙烯、三氟甲磺酸锂和环氧树脂组成的固体聚合物电解质,实现了结构复合材料的高纤维-基体界面结合。SSC的制备过程是先对聚合物电解质进行浸涂,然后使用真空袋固化。在机械加载前后测量了SSC的电化学性能。通过μ-CT成像确定了SSC在制备状态以及弯曲加载下受损状态的微观结构。已制备出一种比电容为0.128 mF/cm(11.62 mF/g)、弯曲强度为47.49 MPa、弯曲模量为8.48 GPa的SSC,与基于编织碳纤维织物电极的SSC相比,其机械性能有显著改善。通过准静态和循环弯曲加载试验评估了超级电容器的力学行为。在恒电流充放电循环试验中,超级电容器的电容保持率高于96%,验证了其优异的电化学稳定性。这项工作中获得的知识将有助于未来优化SSC性能的研究。