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首页> 外文期刊>ChemElectroChem >Synthesis of Nitrogen-Doped Microporous/Mesoporous Carbon with Enhanced Pseudocapacitive Behavior for High-Performance Symmetrical Supercapacitors
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Synthesis of Nitrogen-Doped Microporous/Mesoporous Carbon with Enhanced Pseudocapacitive Behavior for High-Performance Symmetrical Supercapacitors

机译:氮掺杂微孔/介孔碳的合成,具有增强的高性能对称超级电容器的假偶联行为

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摘要

Hierarchical porous carbons are widely used as electrode materials for supercapacitors; however, promotion of the specific capacitance and energy density remains a challenge. Here, we design a N-doped hierarchical microporous/mesoporous carbon (NMC) fabricated through the one-step heat treatment of interpenetrating polymer networks. The pores are obtained by phase separation of the two network polymers with physical penetration and subsequent pyrolysis of the sacrificial polymers to shape the rich micropores/mesopores on the pore wall of a honeycomb-like carbon skeleton formed from carbon precursors. In particular, the optimized NMC possesses an ultrahigh specific surface area of 1969.0 m(2) g(-1) and a pore volume of 1.092 cm(3) g(-1), as well as homogeneous distribution of elemental nitrogen. The NMC also exhibits a distinguished specific capacitance of 261.6 F g(-1) at 0.5 A g(-1) and an excellent cycling stability of 100 % after 10 000 cycles in 6 M KOH in a three-electrode system. Impressively, in situ heteroatom doping of NMC effectively enhances the specific capacitance, and the proportion of pseudocapacitive performance can be as high as 25.4 % of the total capacitance. Symmetrical supercapacitors assembled with two protruding electrodes deliver a high energy density of 23.9 W h kg(-1) at 225 W kg(-1) and an outstanding cycling stability of 93 % after 10 000 cycles in 1 M Na2SO4. All of these features indicate that N-doped microporous/mesoporous carbon is a promising electrode material for supercapacitors.
机译:分层多孔碳广泛用作超级电容器的电极材料;然而,促进特定电容和能量密度仍然是一个挑战。这里,我们设计通过互穿聚合物网络的一步热处理制造的N掺杂的分层微孔/介孔碳(NMC)。通过两种网络聚合物的相分离在具有物理渗透和随后的牺牲聚合物的热解的相分离中获得孔,以将富孔/中孔形状在由碳前体形成的蜂窝状碳骨架的孔壁上形状。特别地,优化的NMC具有1969.0m(2)g(-1)的超高比表面积,孔体积为1.092cm(3)g(-1),以及元素氮的均匀分布。 NMC还在0.5Ag(-1)下表现出261.6fg(-1)的显着特定电容,在三个电极系统中在6M KOH中在10 000周期后的优异循环稳定性。令人印象深刻地,在原位杂原子掺杂NMC有效地增强了比电容,假偶数性能的比例可以高达总电容的25.4%。用两个突出电极组装的对称超级电容器在225W kg(-1)中以225Wkg(-1)提供高能量密度为23.9Wh kg(-1),并且在1M Na 2 SO 4的10 000次循环后的优异循环稳定性为93%。所有这些特征表明N掺杂的微孔/介孔碳是超级电容器的有希望的电极材料。

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