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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A novel core-shell multi-walled carbon nanotube@graphene oxide nanoribbon heterostructure as a potential supercapacitor material
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A novel core-shell multi-walled carbon nanotube@graphene oxide nanoribbon heterostructure as a potential supercapacitor material

机译:一种新型的核壳多壁碳纳米管@氧化石墨烯纳米带异质结构作为潜在的超级电容器材料

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摘要

A novel core-shell heterostructure with mulil-walled carbon nanotubes as the core and graphene oxide nanoribbons as the shell (MWCNT@GONR), fabricated by the facile unzipping of MWCNTs with the help of microwave energy, was used as a supercapacitor (SC) electrode material. Graphene nanopowder (GNP) and multi-walled carbon nanotubes (MWCNTs) have also been applied as SC materials for comparison. A smooth surface and a tube-like structure are found for the GNP and MWCNTs, respectively, while for the MWCNT@GONR material, graphene oxide sheet structures are observed on both sides of central nanotube cores that retain their tube-like structure. The specific capacitance Is much better for the SC electrode with the MWCNT@GONR (252.4 F g~(-1)) compared to the SC electrodes with commercial MWCNTs (39.7 F g~(-1)) and GNP (19.8 F g~(-1)), as determined using cyclic voltammetry (CV) at a scan rate of 50 mV s~(-1), which is due to the defective edges of the nanostructures in the former. The SC electrode with the MWCNT@GONR also exhibits good stability and capacitance retention even after 1000 cycles of galvanostatic charge-discharge testing, indicating its potential as a SC material. CV, galvanostatic charge-discharge (GC/D) and electrochemical impedance spectroscopy (EIS) were applied to analyze the SC performance.
机译:通过利用微波能方便地将MWCNTs解压缩,制备了以多壁碳纳米管为核,氧化石墨烯纳米带为壳的新型核-壳异质结构(MWCNT @ GONR)。电极材料。石墨烯纳米粉(GNP)和多壁碳纳米管(MWCNT)也已用作SC材料进行比较。对于GNP和MWCNT,分别发现了光滑的表面和管状结构,而对于MWCNT @ GONR材料,在中央纳米管核的两侧都观察到了石墨烯氧化物片状结构,并保留了它们的管状结构。 MWCNT @ GONR(252.4 F g〜(-1))的SC电极比市售MWCNTs(39.7 F g〜(-1))和GNP(19.8 F g〜)的SC电极的比电容要好得多。 (-1))是使用循环伏安法(CV)在50 mV s〜(-1)的扫描速率下确定的,这是由于前者中纳米结构的缺陷边缘所致。带有MWCNT @ GONR的SC电极即使在经过1000次恒电流充放电测试后也显示出良好的稳定性和电容保持性,表明其具有作为SC材料的潜力。使用恒压,恒电流充放电(GC / D)和电化学阻抗谱(EIS)来分析SC性能。

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