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Enhanced Supercapacitor Performance Based on CoAl Layered Double Hydroxide-Polyaniline Hybrid Electrodes Manufactured Using Hydrothermal-Electrodeposition Technology

机译:基于煤层双氢氧化物 - 多烷混合杂机混合电极的增强超级电容器性能,采用热热沉积技术制造

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摘要

Electrodes with nanosheet architectures can offer the possibility to achieve enhanced energy storage performance. Herein, we have designed and synthesized novel nanosheet structures of CoAl layered double hydroxide (LDH)-polyaniline (PANI) nanocomposite thin films by a hydrothermal-electrodeposition method. The molecular structure, crystal structure, morphology and chemical composition of the composites were characterized by FT-IR, XRD (SXRD), FESEM, and XPS, whereas their electrochemical properties were evaluated by cyclic voltammetry, electrochemical impedance spectroscopy and galvanostatic charge-discharge tests. Compared with the unmodified CoAl LDH, the CoAl LDH-PANI exhibits significantly improved the specific capacitance and cyclic stability. The composite exhibits a high specific capacitance of 528 F/g at a current density of 10 A/g and excellent cyclic stability with an increase of the specific capacitance of 42.7% after 6000 cycle tests. We revealed the degradation behavior of PANI in 1 M KOH/KCl electrolyte, and the active degradation products also further increased the total specific capacitance of the composite. The enhanced electrochemical performance of the nanocomposite can be attributed to its well-designed nanostructure and the synergistic effects of each component. By analyzing the band structure and density of states of CoAl LDH and PANI, we proposed the possible mechanism of synergistic effect in a new perspective.
机译:具有纳米片架构的电极可以提供实现增强的能量存储性能的可能性。在此,我们通过水热电沉积法设计了设计和合成了煤层双氢氧化物(LDH) - 聚胺(LANI)纳米复合薄膜的新型纳米片结构。复合材料的分子结构,晶体结构,形态学和化学成分的特征在于FT-IR,XRD(SXRD),FESEM和XPS,而通过循环伏安法,电化学阻抗光谱和电镀电荷 - 放电测试评估其电化学性能。与未经修改的煤LDH相比,煤LDH-PANI表现出显着提高了特定电容和循环稳定性。该复合材料在6000次循环试验后,在电流密度为10 a / g的电流密度,电流密度为10 a / g的电流密度,优异的循环稳定性。我们揭示了1M KOH / KCl电解质中PANI的降解行​​为,活性降解产物还进一步增加了复合材料的总比电容。纳米复合材料的增强电化学性能可归因于其设计良好设计的纳米结构和每个组分的协同效应。通过分析煤LDH和PANI状态的频带结构和密度,我们提出了一种新的视角下协同效应的机制。

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