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首页> 外文期刊>Current applied physics: the official journal of the Korean Physical Society >Transition of hexagonal to square sheets of Co3O4 in a triple heterostructure of Co3O4/MnO2/GO for high performance supercapacitor electrode
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Transition of hexagonal to square sheets of Co3O4 in a triple heterostructure of Co3O4/MnO2/GO for high performance supercapacitor electrode

机译:Co3O4 / mnO2三重异性结构/ GO高性能超级电极的三重异性结构中CO3O4方形六边形转变

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摘要

Cobalt oxide and manganese oxides are promising electrode materials amongst the transition metal oxides (TMOs) for pseudocapacitors. The lack of reversibility and deterioration of capacitance at higher current densities is major flaw in Co3O4 as an electrode for supercapacitor while MnO2 suffers from low electrical conductivity and poor cycling stability. It is inevitable to bridge the performance gap between these two TMOs to obtain a high performance supercapacitor based on environmental benign and earth abundant materials. Herein, we fabricated a hybrid triple heterostructure high-performing supercapacitor based on hexagonal sheets of Co3O4, MnO2 nanowires and graphene oxide (GO) to form a composite structure of Co3O4/MnO2/GO by all hydrothermal synthesis route. The Co3O4 square sheets serves as an excellent backbone with good mechanical adhesion with the current collector providing a rapid electronic transfer channel while the integrated nanostructure of MnO2 NW/GO permits more electrolyte ions to penetrate capably into the hybrid structure and allows effective utilization of more active surface areas. A triple heterostructured device exhibits a high areal capacitance of 3087 mF cm(-2) at 10 mV s(-1) scan rate along with the exceptional rate capability and cycling stability having capacitance retention of similar to 170% after 5000 charge/discharge cycles. The TMOs based pseudocapacitor with the conducing scaffolds anchoring based on graphene derivatives like this will pave an encouraging alternatives for next generation energy storage devices.
机译:氧化钴和锰氧化物是对假偶联剂的过渡金属氧化物(TMOS)的有前途的电极材料。在较高电流密度下缺乏可逆性和电容劣化是CO3O4中的主要缺陷,作为超级电容器的电极,而MNO2遭受低导电性和循环稳定性差。弥合这两个TMO之间的性能差距是不可避免的,以获得基于环境良性和地球丰富材料的高性能超级电容器。在此,我们基于Co3O4,MnO2纳米线和甲烯氧化物(GO)的六边形片材制成杂交三重异性结构高性能超级电容器,以通过所有水热合成途径形成CO 3 O 4 / MNO2 / GO的复合结构。 Co3O4方形板用作具有良好的机械粘合的优异主干,其集电器提供快速电子传递通道,同时MnO2 NW / Go的集成纳米结构允许更能电解质离子渗透到混合结构中,并允许有效利用更活跃的表面区域。三重异性结构装置在10mV S(-1)扫描速率下具有3087mF cm(-2)的高面积电容,以及具有相似于5000次充电/放电循环后的电容保持的卓越速率和循环稳定性。 。基于TMOS的伪电容器,其具有基于如此的石墨烯衍生物的调节支架锚固将为下一代储能装置提供令人鼓舞的替代方案。

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