Yue Yang, Liu Nishuang, Ma Yanan, Wang Siliang, Liu Weijie, Luo Cheng, Zhang Hang, Cheng Feng, Rao Jiangyu, Hu Xiaokang, Su Jun, Gao Yihua
Center for Nanoscale Characterization & Devices (CNCD), School of Physics and Wuhan National Laboratory for Optoelectronics (WNLO) , Huazhong University of Science and Technology (HUST) , Luoyu Road 1037 , Wuhan 430074 , P.R. China.
ACS Nano. 2018 May 22;12(5):4224-4232. doi: 10.1021/acsnano.7b07528. Epub 2018 Apr 18.
High-performance microsupercapacitors (MSCs) with three-dimensional (3D) structure provide an effective approach to improve the ability of energy storage. Because the electrodes with 3D structure are generally easily destroyed under mechanical deformation in practical applications, we fabricated a self-healable 3D MSC consisting of MXene (TiCT )-graphene (reduced graphene oxide, rGO) composite aerogel electrode by wrapping it with a self-healing polyurethane as an outer shell. The MXene-rGO composite aerogel combining large specific surface area of rGO and high conductivity of the MXene can not only prevent the self-restacking of the lamella structure but also resist the poor oxidization of MXene to a degree. The MSC based on a 3D MXene-rGO aerogel delivers a large area specific capacitance of 34.6 mF cm at a scan rate of 1 mV s and an outstanding cycling performance with a capacitance retention up to 91% over 15 000 cycles. The 3D MSC presents an excellent self-healing ability with specific capacitance retention of 81.7% after the fifth healing. The preparation of this self-healable 3D MSC can provide a method for designing and manufacturing next-generation long-life multifunctional electronic devices further to meet the requirements of sustainable development.
具有三维(3D)结构的高性能微型超级电容器(MSC)为提高储能能力提供了一种有效方法。由于具有3D结构的电极在实际应用中通常在机械变形下容易被破坏,我们通过用自愈合聚氨酯作为外壳包裹由MXene(TiCT )-石墨烯(还原氧化石墨烯,rGO)复合气凝胶电极组成的自愈合3D MSC。MXene-rGO复合气凝胶结合了rGO的大比表面积和MXene的高导电性,不仅可以防止层状结构的自堆叠,还能在一定程度上抵抗MXene的不良氧化。基于3D MXene-rGO气凝胶的MSC在扫描速率为1 mV s时具有34.6 mF cm的大面积比电容,以及出色的循环性能,在15000次循环中电容保持率高达91%。3D MSC具有出色的自愈合能力,在第五次愈合后比电容保持率为81.7%。这种自愈合3D MSC的制备可以为进一步设计和制造下一代长寿命多功能电子设备提供一种方法,以满足可持续发展的要求。