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Direct growth of WO3 nanostructures on multi-walled carbon nanotubes for high-performance flexible all-solid-state asymmetric supercapacitor

机译:用于高性能柔性全固态不对称超微普及的多壁碳纳米管上WO3纳米结构的直接生长

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The rational design and development of highly conductive hierarchical nanostructured materials are of great importance to improve the electrochemical performance of supercapacitors. Great efforts have been committed to the development of positive electrodes for asymmetric supercapacitors (ASC). However, it is still necessary to develop better negative electrodes for practical applications. In present investigation, a multi-walled carbon nanotubes-tungsten trioxide (MWCNT-WO3) hybrid nanostructure is prepared as a negative electrode for ASC. The MWCNT-WO3 hybrid electrode is prepared using a simple two-step approach, which involves coating of MWCNTs on carbon cloth substrates followed by hydro-thermal treatment to deposit WO3 nanorods on the MWCNT-coated carbon cloth. The MWCNT-WO(3)hybrid electrode exhibits a maximum specific capacitance (areal capacitance) of 429.6 F g(-1) (1.55 F cm(-2)) and capacity retention of 94.3% after 5000 cycles, which are higher than the 155.6 F g(-1) (0.43 F cm(-2)) and 84.9% shown by pristine WO3 in 1 M LiClO4 electrolyte. A flexible all-solid-state ASC is self-assembled with MWCNT-WO3 as a negative electrode, MnO2 as a positive electrode, and PVA-LiClO4 as a gel electrolyte. The MnO2//MWCNT-WO3 ASC achieve specific capacitance of 145.6 F g(-1) at a current of 2 mA and specific energy of 39.63 Wh kg(-1) at a specific power of 546 W kg(-1). Specifically, the ASC exhibits superior long-term cycling stability (77% over 10000 cycles) and excellent mechanical flexibility with less capacitance loss. These remarkable results demonstrate the potential of using MWCNT-WO3 hybrid nanostructures for the fabrication of high-performance energy storage devices. (C) 2019 Published by Elsevier Ltd.
机译:高导电等级纳米结构材料的合理设计和开发非常重视改善超级电容器的电化学性能。巨大的努力已经致力于发展不对称超级电容器的正电极(ASC)。然而,仍然需要为实际应用开发更好的负电极。在本研究中,制备多壁碳纳米管 - 钨(MWCNT-WO3)杂化纳米结构作为ASC的负电极制备。使用简单的两步方法制备MWCNT-WO3混合电极,其涉及在碳布基材上涂覆MWCNT,然后用水热处理,以在MWCNT涂覆的碳布上沉积WO3纳米棒。 MWCNT-WO(3)混合电极表现出429.6Fg(-1)(1.55f cm(-2))的最大特定电容(区域电容),5000个循环后的94.3%的容量保持,其高于155.6 f g(-1)(0.43 f cm(-2))和84.9%在1M liclo4电解质中由原始WO3所示。柔性全固态ASC用MWCNT-WO3作为负电极,MnO 2作为正电极和PVA-LICLO4作为凝胶电解质。 MNO2 // MWCNT-WO3 ASC以2MA的电流和39.63WHkg(-1)的特定能量,在546W kg(-1)的特定功率下实现145.6 f G(-1)的特定电容。具体地,ASC表现出优异的长期循环稳定性(77%超过10000个循环),并且具有较少的电容损耗,具有优异的机械柔性。这些显着的结果证明了使用MWCNT-WO3混合纳米结构的潜力用于制造高性能储能装置。 (c)2019年由elestvier有限公司发布

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