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One-step construction of 3D N/P-codoped hierarchically porous carbon framework in-situ armored Mn3O4 nanoparticles for high-performance flexible supercapacitors

机译:用于高性能柔性超级电路的3D N / P合型分层多孔碳框架的3D N / P合型分层碳框架的一步施工

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In this paper, the novel 3D N/P-codoped hierarchically porous carbon framework in-situ armored Mn3O4 nanoparticles (NPCM/Mn3O4) prepared by one-step method are first reported. Carbon framework armoring Mn3O4 nanoparticles not only improves the conductivity and prevents the aggregation of nanoparticles, but also alleviates the huge volume expansion of Mn3O4 nanoparticles by the elastic property of carbon framework during the rapid charge and discharge process, thereby enhancing cycle life. Moreover, N/P-codoped 3D porous structure with high specific surface area provides a clear path, which can effectively reduce the charge transfer resistance and improve the charge storage for high rate capability. Because of these merits, NPCM/Mn3O4 exhibits a high specific capacitance (384 F g(-1) at a current density of 0.5 A g(-1)) and excellent cycle stability (nearly no decay after 5000 cycles). The symmetrical supercapacitors show a large potential window (1.3 V in 6 M KOH electrolyte and 1.6 V in 1 M Na2SO4 electrolyte) with a maximum energy density of 16.5 Wh kg(-1) at a power density of 207.4 W kg(-1). In addition, the all-solid-state supercapacitors device has excellent electrochemical properties and the capacitance remains above 95% after 500 cycles under mechanical bending. These encouraging results lay the foundation for developing novel carbon-based metal oxide electrode materials for high rate energy conversion and storage devices. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文首先报道了通过一步法制备的原位铠装MN3O4纳米颗粒(NPCM / MN3O4)的新型3D N / P编码的分层碳框架。碳框架装甲Mn3O4纳米颗粒不仅改善了导电性并防止了纳米颗粒的聚集,而且还可以通过快速充电和放电过程中的碳框架的弹性性能减轻Mn3O4纳米颗粒的巨大膨胀,从而提高循环寿命。此外,具有高比表面积的N / P型编号3D多孔结构提供透明路径,可以有效地降低电荷传递电阻并改善高速率能力的电荷存储。由于这些优点,NPCM / MN3O4在电流密度为0.5Ag(-1))的高比电容(384fg(-1))和优异的循环稳定性(在5000次循环后几乎没有衰减)。对称的超级电容器显示大潜在窗口(1.3V在6M KOH电解质中,在1M Na 2 SO 4电解质中为1.6V),最大能量密度为207.4Wkg(-1)的功率密度为16.5WHKG(-1) 。另外,全固态超级电容器装置具有优异的电化学性能,并且在机械弯曲下500次循环后电容保持高于95%。这些令人鼓舞的结果为高速能量转换和储存装置开发新型碳基金属氧化物电极材料的基础。 (c)2019 Elsevier Ltd.保留所有权利。

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