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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Facile low-temperature synthesis of hematite quantum dots anchored on a three-dimensional ultra-porous graphene-like framework as advanced anode materials for asymmetric supercapacitors
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Facile low-temperature synthesis of hematite quantum dots anchored on a three-dimensional ultra-porous graphene-like framework as advanced anode materials for asymmetric supercapacitors

机译:固定在三维超多孔类石墨烯骨架上的赤铁矿量子点的简便低温合成,作为不对称超级电容器的先进阳极材料

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摘要

A composite consisting of well-dispersed and ultrafine hematite quantum-dots (similar to 2.7 nm) anchored on a three-dimensional ultra-porous graphene-like framework (denoted as Fe2O3-QDs-3D GF) has been designed by a facile and scalable strategy. In the composite, the ultra-porous 3D GF with high conductivity and high surface area was used as a conductive matrix with surface defective sites for the controllable growth of uniformly dispersed, ultra-small Fe2O3-QDs. The graphene framework can tightly hold a great amount of Fe2O3-QDs, thereby ensuring high utilization of active materials and the required conductivity to individual Fe2O3-QDs. The ultra-small-sized Fe2O3-QDs anchored on the 3D GF can endow the composite with a superior high surface area and enough active sites for electrochemical reactions, thus giving the composite a large specific capacitance. As expected, the as-prepared Fe2O3-QDs-3D GF electrode exhibited a high specific capacitance of 945 F g(-1) at 1.0 A g(-1) in a three-electrode system in 2.0 mol L-1 KOH aqueous solution. In addition, high-performance asymmetric supercapacitors have been fabricated with Fe2O3-QDs-3D GF as the anode and 3D hierarchical porous graphene (HPG) as the cathode, and they showed a very high energy density of 77.7 W h kg(-1) at a power density of 0.40 kW kg(-1) and maximum power density of 492.3 kW kg(-1), as well as excellent cycling stability.
机译:通过方便和可扩展的设计,设计了一种由分散在三维超多孔石墨烯样骨架(表示为Fe2O3-QDs-3D GF)上的分散良好的超细赤铁矿量子点(近似于2.7 nm)组成的复合材料战略。在复合材料中,具有高导电性和高表面积的超多孔3D GF用作具有表面缺陷部位的导电基质,用于可控地均匀分散的超小Fe2O3-QDs的生长。石墨烯骨架可以紧密地容纳大量的Fe2O3-QD,从而确保了活性材料的高利用率以及对各个Fe2O3-QDs的导电性。固定在3D GF上的超小尺寸Fe2O3-QD可以赋予复合材料更高的高表面积和足够的电化学反应活性位,从而为复合材料提供较大的比电容。如预期的那样,在2.0 mol L-1 KOH水溶液的三电极系统中,制备的Fe2O3-QDs-3D GF电极在1.0 A g(-1)时表现出945 F g(-1)的高比电容。 。此外,以Fe2O3-QDs-3D GF为阳极并以3D分层多孔石墨烯(HPG)为阴极制备了高性能不对称超级电容器,它们显示出77.7 W h kg(-1)的非常高的能量密度。功率密度为0.40 kW kg(-1),最大功率密度为492.3 kW kg(-1),并具有出色的循环稳定性。

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