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首页> 外文期刊>ACS Omega >Low-Crystalline FeOOH Nanoflower Assembled Mesoporous Film Anchored on MWCNTs for High-Performance Supercapacitor Electrodes
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Low-Crystalline FeOOH Nanoflower Assembled Mesoporous Film Anchored on MWCNTs for High-Performance Supercapacitor Electrodes

机译:低结晶FeOOH纳米升组合在MWCNT上锚定的中孔膜,用于高性能超级电容器电极

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摘要

Crystalline iron oxides/hydroxides are generally preferred as supercapacitor electrode materials instead of the low-crystalline structure, despite the fact that an amorphous phase could have a comprehensive electrochemical performance owing to its structural disorder. Herein, we present a facile and scalable method for preparing amorphous FeOOH [email?protected] carbon nanotubes (FeOOH [email?protected]) composites. The resulting hybrid nanoflowers hold a distinctive heterostructure composed of a self-assembled amorphous FeOOH nanofilm on the MWCNTs surface. The low-crystalline 1FeOOH [email?protected] composites at pH 8 exhibit a high comprehensive capacitive performance, which may be attributed to the advantageous structural features. In a ?0.85 to 0 V vs Ag/AgCl potential window, the prepared hybrid electrode delivers a high specific capacitance of 345 F g~(–1) at a current density of 1 A g~(–1), good cycling stability (76.4% capacity retention over 5000 consecutive cycles), and outstanding rate performance (167 F g~(–1) at 11.4 A g~(–1)). This work may trigger the possibilities of these nanomaterials for further application in supercapacitor electrodes, specifically low-crystalline oxide/hydroxide-based electrode materials.
机译:尽管非晶相可能具有由于其结构障碍而具有综合电化学性能的事实,结晶氧化铁/氢氧化物通常优选为超级电容器电极材料而不是低结晶结构。在此,我们提出了一种用于制备无定形FeOOH [电子邮件的碳纳米管(FeOh [电子邮件吗?受保护])复合材料的容易和可扩展的方法。所得的杂交纳米割球物将由在MWCNTS表面上的自组装无定形FeOOH纳米滤膜组成的独特异质结构。 pH8的低晶体1feooh [email?受保护]复合材料表现出高综合的电容性能,这可能归因于有利的结构特征。在a 0.85至0V VS Ag / AgCl潜在窗口中,制备的混合电极以1A G〜(-1)的电流密度,良好的循环稳定性( 76.4%的容量潴留超过5000个连续循环),并且出色的速率性能(167 f g〜(-1)为11.4 a g〜(-1))。该作品可以触发这些纳米材料的可能性,用于进一步应用于超级电容器电极,特别是低结晶氧化物/氢氧化物基电极材料。

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