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Sulfidation of NiMn-Layered Double Hydroxides/Graphene Oxide Composites toward Supercapacitor Electrodes with Enhanced Performance

机译:硫化NiMn层双氢氧化物/石墨烯氧化物复合材料,具有增强性能的超级电容器电极

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摘要

Supercapacitors can deliver high-power density and long cycle stability, but the limited energy density due to poor electronic and ionic conductivity of the supercapacitor electrode has been a bottleneck in many applications. A strategy to prepare microflower-like NiMn-layered double hydroxides (LDH) with sulfidation is delineated to reduce the charge transfer resistance of supercapacitor electrode and realize faster reversible redox reactions with notably enhanced specific capacitance. The incorporation of graphite oxide (GO) in NiMn LDH during sulfidation leads to simultaneous reduction of GO with enhanced conductivity, lessened defects, and doping of S into the graphitic structure. Cycling stability of the sulfidized composite electrode is enhanced due to the alleviation of phase transformation during electrochemical cycling test. As a result, this sulfidation product of LDH/GO (or LDHGOS) can reach a high-specific capacitance of 2246.63 F g(-1) at a current density of 1 A g(-1), and a capacitance of 1670.83 F g(-1) is retained at a high-current density of 10 A g(-1), exhibiting an outstanding capacitance and rate performance. The cycling retention of the LDHGOS electrode is also extended to approximate to 67% after 1500 cycles compared to only approximate to 44% of the pristine NiMn LDH.
机译:超级电容器可以提供高功率密度和长循环稳定性,但由于超级电容器电极的电子和离子电导率差的能量密度有限,这是许多应用中的瓶颈。用硫化处理的微滴大型NiMn层双氢氧化物(LDH)的策略被描绘,以降低超级电容器电极的电荷传递电阻,并通过显着增强的特定电容实现更快的可逆氧化还原反应。在硫化过程中掺入NIMN LDH中的石墨氧化物(GO)导致同时减少通过增强的电导率,降低缺陷和S进入石墨结构的掺杂。由于电化学循环试验期间的相变性,增强了硫化复合电极的循环稳定性。结果,LDH / GO(或LDHGOS)的该硫化乘积可以以1Ag(-1)的电流密度达到2246.63fg(-1)的高比电容,并且电容为1670.83 f g (-1)以10Ag(-1)的高电流密度保留,表现出优异的电容和速率性能。与仅近似近44%的原始NIMN LDH相比,LDHGOS电极的循环保留也延伸以近似为67%。

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