微型多孔材料
超级电容器
材料科学
碳纤维
催化作用
体积热力学
化学工程
功率密度
储能
能量密度
电极
纳米技术
多孔性
电流密度
电容
分子
共轭微孔聚合物
作者
Yalan Ma,Xingyan Xie,Cheng Du,Liu Wan,Yan Zhang,Jian Chen,Mingjiang Xie
标识
DOI:10.1002/chem.202502917
摘要
Abstract At the molecular level, it is challenging to create highly microporous carbon materials from inexpensive molecules rather than using the more common method of carbonization/activation of biomasses. In this study, we present a novel approach using a catalytic template to induce the formation of microporous carbon doped with N and O functionalities with 8‐hydroxyquinoline (8‐HQ) as a starting material and MgO as a catalyst. The resulting product, referred to as HMC, exhibits a hierarchical structure with a high microporosity of 59.8%, large pore volume of 1.22 cm 3 /g, along with rich N, O functionalities, and hydrophilic properties. Due to its highly microporous nature, as an electrode for a symmetric supercapacitor, HMC demonstrates superior energy storage capabilities in a 1.0 M TEABF 4 /AN (tetraethylammonium tetrafluoroborate/acetonitrile) electrolyte, achieving a capacity of 135 F/g@ 1.0 A/g, high energy density of 75.1 Wh/kg at 2000 W/kg. Even at a superhigh power density of 40 kW/kg, the energy density remains as high as 67.8 Wh/kg. Moreover, HMC outperforms a well‐known industrial carbon, YP‐80F (Kuraray), and other recently reported carbon‐based devices in terms of energy storage levels.
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