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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Glucose-derived nitrogen-doped hierarchical hollow nest-like carbon nanostructures from a novel template-free method as an outstanding electrode material for supercapacitors
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Glucose-derived nitrogen-doped hierarchical hollow nest-like carbon nanostructures from a novel template-free method as an outstanding electrode material for supercapacitors

机译:来自葡萄糖的氮掺杂的分层空心巢状碳纳米结构,采用新型无模板方法,是超级电容器的出色电极材料

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摘要

Nitrogen-doped hierarchical hollow nest-like carbon (NHHNC) nanostructures were fabricated from glucose with a novel template-free method. A hollow nest-like precursor, Ni(OH)(2)@N-polysaccharide, was first formed through a hydrothermal treatment of glucose in the presence of NiSO4 and hexamethylenetetramine (HMT), with glucose serving as the carbon source, HMT as the precipitant and nitrogen source, and NiSO4 as the main structure-directing reagent. The hierarchical porous carbon structure was created through thermal carbonization and activation followed by acid etching, of the hollow nest-like precursor. The NHHNC was a hierarchical porous structure composed of three-dimensionally intercepting N-doped porous carbon sheets and possessed micropores, mesopores, and macropores. This unique hierarchical hollow nest-like porous structure is ideal for applications as electrodes for supercapacitors, with the micropores offering large surface areas to accommodate electric double layer capacitances, the mesopores as fast ion transport channels, and the macropores as the electrolyte reservoir for fast ion supply. These advantageous structural features, together with the fast charge transport ability of the partially graphitized carbon sheets and extra pseudocapacitances generated through superficial redox reactions of the N-doped sites, led to outstanding capacitive performances of the NHHNC. The NHHNC electrode exhibited a high specific capacitance of 322 F g(-1) at 1 A g(-1), an excellent high rate capability of 54% capacitance retention at 20 A g(-1), and an outstanding cycling stability of only 2% loss in specific capacitance after 10 000 cycles at a current density of 10 A g(-1), among the best reported. The present template-free process, however, unlike the often cumbersome templating ones, is well suited for mass production and thus practical applications.
机译:采用新颖的无模板方法,由葡萄糖制备了氮掺杂的分层空心巢状碳(NHHNC)纳米结构。首先通过在NiSO4和六亚甲基四胺(HMT)存在下对葡萄糖进行水热处理来形成空心巢状前体Ni(OH)(2)@ N-多糖,其中葡萄糖作为碳源,HMT作为碳源。沉淀剂和氮源,以NiSO4为主要结构导向剂。通过对中空巢状前体进行热碳化和活化,然后进行酸蚀刻来创建分层的多孔碳结构。 NHHNC是一种分层的多孔结构,由三维拦截N掺杂的多孔碳片组成,并具有微孔,中孔和大孔。这种独特的分层空心巢状多孔结构非常适合用作超级电容器的电极,其微孔可提供大的表面积以容纳双电层电容,中孔可作为快速离子传输通道,大孔可作为快速离子的电解质储存池供应。这些有利的结构特征,加上部分石墨化的碳片的快速电荷传输能力以及通过N掺杂位点的表面氧化还原反应产生的额外的假电容,导致了NHHNC的出色电容性能。 NHHNC电极在1 A g(-1)时显示出322 F g(-1)的高比电容,在20 A g(-1)时具有54%的电容保持率的出色高倍率能力以及出色的循环稳定性在10 000 g(-1)的电流密度下,经过10 000次循环后,比电容仅损失2%,这是最好的报告之一。然而,与通常繁琐的模板处理方法不同,当前的无模板处理方法非常适合于批量生产,因此非常适合实际应用。

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