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首页> 外文期刊>Electrochimica Acta >Hierarchical porous PANI/MIL-101 nanocomposites based solid-state flexible supercapacitor
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Hierarchical porous PANI/MIL-101 nanocomposites based solid-state flexible supercapacitor

机译:基于分层多孔PANI / MIL-101纳米复合材料基于固态柔性超级电容器

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Metal-Organic Frameworks (MOFs) have attracted increasing attention in the field of energy storage owing to their high porosity, high specific surface area, high charge storage. However, the poor conductivity in most MOFs largely hinders their electrical properties. In this work, we developed an effective strategy to grow the conductive polyaniline (PANI) inside the pores of MIL-101 (labeled as PANI/MIL-101) to form a fixed interpenetrating network structure. The electron-rich imine group in PANI is chelated with the coordinatively unsaturated metal sites (CUS) in MIL-101 to form a relatively strong bonded complex and through other synergistic effects to enhance the conductivity and electrochemical properties. The resultant PANI/MIL-101 exhibited a superior high capacitance of 1197 F g(-1) (i.e., 957.6C g(-1)) at 1 A g(-1) in constant current charge and discharge test. The assembled flexible solid-state supercapacitor showed a favorable specific capacitance, power density and good cycling stability (a 81% capacitance retention rate over 10,000 cycles). It also demonstrates a good flexibility, as evidenced by a small capacitance loss of 10% after being subject to 1000 bending cycles at 180 degrees. The PANI/MIL-101 nano-composite showed great potential in energy storage device. Crown Copyright (c) 2018 Published by Elsevier Ltd. All rights reserved.
机译:由于其高孔隙率,高比表面积,高电荷存储,金属有机框架(MOFS)引起了储能领域的越来越长。然而,大多数MOF的导电性差很大程度上阻碍了它们的电气性质。在这项工作中,我们开发了一种有效的策略,使MIL-101的孔内的导电聚苯胺(PANI)(标记为PANI / MIL-101)以形成固定的互穿网络结构。 PANI中富含电子的亚胺基团与MIL-101中的坐标不饱和金属位点(CU)螯合,形成相对强的键合复合物,并通过其他协同作用,以增强电导率和电化学性质。得到的PANI / MIL-101在恒定电流充电和放电测试中,在1Ag(-1)下,优异的高电容为1197fg(-1)(即,957.6cg(-1))。组装的柔性固态超级电容器显示出有利的特定电容,功率密度和良好的循环稳定性(81%超过10,000个循环的电容保持率)。它还证明了良好的灵活性,如在180度的1000次弯曲循环受到1000次弯曲后的10%的小电容损失所证明。 PANI / MIL-101纳米复合材料在储能装置中显示出很大的潜力。 Crown版权(c)2018由elestvier有限公司出版。保留所有权利。

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