用于高性能超级电容器的 RuO2/半胱氨酸纳米复合材料

IF 2.6 4区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY ChemNanoMat Pub Date : 2024-08-07 DOI:10.1002/cnma.202400283
Zhang Rui, Yan Guo, Xiaoyu Zhu, Maoyan Dou, Tao Tao, Hui He, Ziqin Gong
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引用次数: 0

摘要

采用简便的高温水热法合成了 RuO2/半胱氨酸(RuO2/Cys)纳米复合材料,其比电容得到改善,电化学耐久性良好。使用半胱氨酸的优势在于其分子中富含羧基、巯基和氨基等配体,这些配体很容易与水合 RuO2 结合,从而促进其有效分散。对其形态、结构和化学成分的分析表明,L-半胱氨酸的加入大大抑制了 RuO2 的团聚,改善了其分散性,RuO2 的尺度也从原来的微米级缩小到纳米级。这种结构有利于质子转移和电子转移,因此 RuO2/Cys 纳米复合材料的比电容显著提高,高达 1221.7 F g-1,能量密度高达 108.6 Wh kg-1,在 0.5 M H2SO4 电解液中 1 A g-1 的功率密度为 400.2 W kg-1。L-cysteine 与 RuO2 的结合还有效防止了 RuO2 在氧化还原过程中的变形,与原始 RuO2 的 48.8% 相比,经过 10,000 次充放电循环后,电容保持率提高到 87.7%。高电容性能和更好的循环稳定性使 RuO2/Cys 纳米复合材料成为一种有利的电极材料,可广泛应用于储能领域。
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RuO2/Cysteine Nanocomposites for High‐Performance Supercapacitors
RuO2/Cysteine (RuO2/Cys) nanocomposites were synthesized using a facile high‐temperature hydrothermal method, with improved specific capacitance and good electrochemical durability. The advantage of using cysteine is that its molecule is rich in ligands such as carboxyl, sulfhydryl, and amino groups, which can be easily bound to hydrated RuO2, thus facilitating its effective dispersion. Analyses of its morphology, structure, and chemical composition showed that the incorporation of L‐cysteine greatly inhibited the agglomeration of RuO2 and improved its dispersion, and the scale of RuO2 was reduced from the original micrometer scale to the nanometer scale. Such structures facilitated proton transfer and electron transfer, so RuO2/Cys nanocomposites showed significantly improved specific capacitance, up to 1221.7 F g‐1, and the energy density was up to 108.6 Wh kg‐1 with a power density of 400.2 W kg‐1 at 1 A g‐1 in a 0.5 M H2SO4 electrolyte. The combination of L‐cysteine with RuO2 also effectively prevented the deformation of RuO2 in the redox process, and the capacitance retention rate was increased to 87.7% compared to 48.8% of pristine RuO2 after 10,000 charging‐discharging cycles. High capacitance performance and improved cyclic stability enable RuO2/Cys nanocomposite a favorable electrode material for wide applications in energy storage.
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来源期刊
ChemNanoMat
ChemNanoMat Energy-Energy Engineering and Power Technology
CiteScore
6.10
自引率
2.60%
发文量
236
期刊介绍: ChemNanoMat is a new journal published in close cooperation with the teams of Angewandte Chemie and Advanced Materials, and is the new sister journal to Chemistry—An Asian Journal.
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