Li Hui, Lin Shuai, Li Han, Wu Ziqiang, Chen Qian, Zhu Lili, Li Changdian, Zhu Xuebin, Sun Yuping
Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei, 230031, P. R. China.
University of Science and Technology of China, Hefei, 230026, P. R. China.
Small Methods. 2022 Mar;6(3):e2101320. doi: 10.1002/smtd.202101320. Epub 2022 Jan 15.
Layered double hydroxides (LDHs) with outstanding redox activity on flexible current collectors can serve as ideal cathode materials for flexible hybrid supercapacitors in wearable energy storage devices. Electrodeposition is a facile, time-saving, and economical technique to fabricate LDHs. The limited loading mass induced by insufficient mass transport and finite exposure of active sites, however, greatly hinders the improvement of areal capacity. Herein, magneto-electrodeposition (MED) under high magnetic fields up to 9 T is developed to fabricate NiCo-LDH on flexible carbon cloth (CC) as well as Ti C T functionalized CC. Owing to the magneto-hydrodynamic effect induced by magnetic-electric field coupling, the loading mass and exposure of active sites are significantly increased. Moreover, a 3D cross-linked nest-like microstructure is constructed. The MED-derived NiCo-LDH delivers an ultrahigh areal capacity of 3.12 C cm at 1 mA cm and as-fabricated flexible hybrid supercapacitors show an excellent energy density with an outstanding cycling stability. This work provides a novel route to improve electrochemical performances of layered materials through MED technique.
在柔性集流体上具有出色氧化还原活性的层状双氢氧化物(LDHs)可作为可穿戴储能设备中柔性混合超级电容器的理想阴极材料。电沉积是一种制备LDHs的简便、省时且经济的技术。然而,传质不足和活性位点有限暴露所导致的有限负载质量极大地阻碍了面积容量的提高。在此,开发了高达9 T的强磁场下的磁电沉积(MED)方法,以在柔性碳布(CC)以及Ti C T功能化CC上制备NiCo-LDH。由于磁电场耦合引起的磁流体动力学效应,活性位点的负载质量和暴露量显著增加。此外,构建了三维交联巢状微观结构。MED衍生的NiCo-LDH在1 mA cm时具有3.12 C cm的超高面积容量,所制备的柔性混合超级电容器显示出优异的能量密度和出色的循环稳定性。这项工作通过MED技术为改善层状材料的电化学性能提供了一条新途径。