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In-situ growth of MnO2 crystals under nanopore-constraint in carbon nanofibers and their electrochemical performance

机译:碳纳米纤维中纳米孔约束下MnO2晶体的原位生长及其电化学性能

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摘要

Growing MnO2 nanocrystals in the bulk of porous carbon nanofibers is conducted in a KMnO4 aqueous solution aimed to enhance the electrochemical performance of MnO2. The rate of redox reaction between KMnO4 and carbon was controlled by the concentration of KMnO4 in a neutral solution. The MnO2 nanoparticles grow along with (211) crystal faces when the redox reaction happens on the surface of fibers under 1D constraint, while the nanoparticles grow along with (200) crystal faces when the redox reaction happens in the bulk of fibers under 3D constraint. The composite, where MnO2 nanoparticles are formed in the bulk under a constraint, yields an electrode material for supercapacitors showing good electron transport, rapid ion penetration, fast and reversible Faradaic reaction, and excellent rate performance. The capacitance of the composite electrode could be 1282 F g−1 under a current density of 0.2 A g−1 in 1 M Na2SO4 electrolyte. A symmetric supercapacitor delivers energy density of 36 Wh kg−1 with power density of 39 W kg−1, and can maintain 7.5 Wh kg−1 at 10.3 kW kg−1. It exhibits an excellent electrochemical cycling stability with 101% initial capacitance and 95% columbic efficiency even after 1000 cycles of charge/discharge.
机译:大量多孔碳纳米纤维中生长的MnO2纳米晶体是在KMnO4水溶液中进行的,目的是增强MnO2的电化学性能。 KMnO4与碳之间的氧化还原反应速率由中性溶液中KMnO4的浓度控制。当一维约束条件下纤维表面发生氧化还原反应时,MnO2纳米粒子与(211)晶面一起生长,而当3D约束条件下纤维中发生氧化还原反应时,纳米颗粒与(200)晶面一起生长。 MnO2纳米粒子在约束条件下在主体中形成的复合材料可制成超级电容器电极材料,该电极材料具有良好的电子传输,快速的离子渗透,快速且可逆的法拉第反应以及出色的倍率性能。在1 M Na2SO4电解液中,电流密度为0.2 A g -1 时,复合电极的电容为1282 F g -1 。对称超级电容器的能量密度为36 Wh kg -1 ,功率密度为39 W kg -1 ,并且可以维持7.5 Wh kg -1 >在10.3 kW kg -1 。即使在经过1000次充/放电循环后,它仍具有出色的电化学循环稳定性,初始电容为101%,哥伦比亚效率为95%。

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