首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Hydrothermal encapsulation of VO2(A) nanorods in amorphous carbon by carbonization of glucose for energy storage devices
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Hydrothermal encapsulation of VO2(A) nanorods in amorphous carbon by carbonization of glucose for energy storage devices

机译:通过碳化葡萄糖的无定形碳中VO2(A)纳米棒的水热封装通过储存装置

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摘要

In recent decades, tremendous attention has been paid to the development of new electrode materials with high capacitance to meet the requirements of electrode materials in supercapacitors. Among vanadium oxides, VO2(A) has recently received increasing attention due to its unique layered structure, phase transformation and applications in Li-ion batteries. However, few studies have focused on the electrochemical properties of VO2(A) as electrochemical capacitors. Herein, we develop a facile hydrothermal method to prepare VO2(A)@C core-shell structured composites by carbonization of glucose in the presence of V2O5 nanowires. The electrochemical properties of the VO2(A)@C core-shell composites are investigated as a supercapacitor electrode material for the first time; the composites show excellent pseudocapacitive behavior and display a specific capacitance as high as 179 F g(-1) at 1 A g(-1). A flexible asymmetric supercapacitor device is fabricated using VO2(A)@C composites and activated carbon and delivers an excellent capacitance of 0.5 F cm(-2) at a scan rate of 5 mV s(-1). Replacing the aqueous electrolyte with a LiCl/PVA gel electrolyte can efficiently improve the cycling performance to 85% retention after 1600 cycles. The good electrochemical performance of the composites indicates their high potential as electrode materials for supercapacitors.
机译:近几十年来,已经向具有高电容的新电极材料进行了巨大的关注,以满足超级电容器中电极材料的要求。在钒氧化物中,VO2(A)最近由于其独特的层状结构,相变和锂离子电池中的应用而受到影响。然而,很少有研究专注于VO2(A)作为电化学电容器的电化学性质。在此,我们开发了一种容易水热法,通过在V2O5纳米线的存在下通过葡萄糖的碳化制备VO2(a)核 - 壳结构复合材料。第一次研究VO2(A)核 - 壳复合材料的电化学性质作为超级电容器电极材料;复合材料显示出优异的假偶像感应性,并且在1A(-1)时显示高达179 f G(-1)的特定电容。使用VO2(a)@c复合材料和活性炭制造柔性非对称超电容器装置,并以5mV s(-1)的扫描速率为0.5f cm(-2)的优异电容。用LiCl / PVA凝胶电解质替换含水电解质可以有效地将循环性能有效地改善1600次循环后的85%。复合材料的良好电化学性能表明它们作为超级电容器的电极材料的高潜力。

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