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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Carbon encapsulated RuO2 nano-dots anchoring on graphene as an electrode for asymmetric supercapacitors with ultralong cycle life in an ionic liquid electrolyte
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Carbon encapsulated RuO2 nano-dots anchoring on graphene as an electrode for asymmetric supercapacitors with ultralong cycle life in an ionic liquid electrolyte

机译:碳封装的RuO2纳米点锚固在石墨烯上,作为离子液体电解质中超长循环寿命的不对称超级电容器的电极

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Assembling asymmetric y efficient strategy to enhance the energy density of SCs. However, the poor cycle stabilitysupercapacitors (SCs) combined with ionic liquid (IL) electrolytes is a ver of pseudocapacitive metal oxides in ILs seriously affects the performance of this class of asymmetric SCs. Improving the structural stability of metal oxides during the charge/discharge process is one of the greatest challenges at present. Herein, RuO2 nano-dots/reduced graphene oxide (RGO) composites are firstly prepared, and an IL-based asymmetric SC is built using the component-optimized composite (20 wt% RuO2/RGO) as the cathode and activated polyaniline-derived carbon nanorods (denoted as APDC) as the anode. It exhibits a high energy density of 108 W h kg(-1), but shows poor cycling stability. In order to solve this problem, an ultrathin carbon layer originating from glucose is employed to encapsulate RuO2 nano-dots anchoring on RGO, forming a core/shell structure of RuO2@C. With the protection of the carbon shell, the as-made RuO2@.C/RGOHAPDC asymmetric SC exhibits superior long-term stability with 98.5% capacitance retention after 100 000 cycles in the IL electrolyte, as well as a high energy density of 103 W h kg(-1) with a potential window of 3.8 V. Furthermore, this protection mechanism of the carbon layer is analyzed by electrochemical quartz crystal microbatance experiments.
机译:组装非对称y有效策略以增强SC的能量密度。但是,循环稳定性差的超级电容器(SC)与离子液体(IL)电解质结合在一起,是IL中假电容金属氧化物的一种形式,严重影响了这类不对称SC的性能。目前,在充电/放电过程中提高金属氧化物的结构稳定性是最大的挑战之一。在此,首先制备RuO2纳米点/还原氧化石墨烯(RGO)复合材料,并使用组分优化的复合材料(20 wt%RuO2 / RGO)作为阴极和活性聚苯胺衍生的碳,构建基于IL的不对称SC纳米棒(表示为APDC)作为阳极。它表现出108 W h kg(-1)的高能量密度,但循环稳定性差。为了解决该问题,采用源自葡萄糖的超薄碳层来封装锚固在RGO上的RuO 2纳米点,形成RuO 2 C的核/壳结构。经过保护的碳壳,制成的RuO2 @ .C / RGOHAPDC不对称SC在IL电解液中经过10万次循环后,具有优异的长期稳定性和98.5%的电容保持率,以及103 W的高能量密度h kg(-1)的电位窗口为3.8V。此外,通过电化学石英晶体微态实验分析了碳层的这种保护机理。

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