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碳纳米管表面覆盖的铜铁氰化钾的阳离子超级电容性能。

Cationic supercapacitance of carbon nanotubes covered with copper hexacyanoferrate.

机构信息

Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, College of Life Sciences and Chemistry, Zhejiang Normal University, Jinhua, Zhejiang, 321004, People's Republic of China.

出版信息

Nanotechnology. 2019 Dec 13;30(50):505401. doi: 10.1088/1361-6528/ab3ef2. Epub 2019 Aug 28.

Abstract

Carbon nanotubes (CNT) are uniformly covered with copper hexacyanoferrate (CuHCF) via coprecipitation to form a core shell structure. The CuHCF thickness can be tuned from 10 nm to 30 nm by changing the CuHCF loading in the hybrids from 25% to 58%. The capacitive behavior is affected by the hydrated cation radius. In 1 mol l KCl solution, CuHCF/CNT hybrids (46% CuHCF loading) show the largest specific capacitance of up to 989 F g at a discharge density of 1 A g. The hybrids also possess superior rate capability with only 8.2% capacitance loss when increasing the discharge current from 1 to 20 A g. The superior capacitive performance of the hybrids in the K-ion solution can be attributed to the smaller hydrated radius of the K ion, which will favor the diffusion of the cation within the CuHCF lattice, leading to a larger faradic current. Besides, the cyclic stability of the hybrids is surprising, with 89.7% capacitance retention after 10000 discharge/charge cycles. The CuHCF/CNT hybrids are combined with the reduced graphene oxides (RGOs) to construct an asymmetrical supercapacitor, and its potential window can reach up to 2.0 V. More importantly, this supercapacitor exhibits a high energy density of 60.4 Wh kg at the power density of 0.5 kW kg.

摘要

通过共沉淀法使碳纳米管(CNT)均匀地覆盖一层铜铁氰化钾(CuHCF),形成核壳结构。通过改变共沉淀法中杂交物中 CuHCF 的负载量(从 25%到 58%),可以将 CuHCF 的厚度从 10nm 调至 30nm。电容行为受水合阳离子半径的影响。在 1mol l KCl 溶液中,CuHCF/CNT 杂交物(CuHCF 负载量为 46%)在 1Ag 的放电密度下表现出高达 989Fg 的最大比电容。该杂交物还具有优异的倍率性能,当放电电流从 1A g 增加到 20A g 时,电容仅损失 8.2%。在 K 离子溶液中,该杂交物具有优越的电容性能,这归因于 K 离子较小的水合半径,这有利于阳离子在 CuHCF 晶格内的扩散,从而产生更大的法拉第电流。此外,该杂交物的循环稳定性令人惊讶,经过 10000 次充放电循环后,电容保持率为 89.7%。将 CuHCF/CNT 杂交物与还原氧化石墨烯(RGOs)结合构建非对称超级电容器,其工作窗口可高达 2.0V。更重要的是,该超级电容器在 0.5kWkg 的功率密度下具有 60.4Whkg 的高能量密度。

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