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阐明毛发衍生碳负载的Ag/Ni-MnO超级电容器中的Mn/Mn和Ni/Ni氧化还原协同作用。

Elucidating Mn/Mn and Ni/Ni Redox Synergy in Hair-Derived Carbon-Supported Ag/Ni-MnO Supercapacitor.

作者信息

Sanni Abdulkadeem, Govindarajan Durai, Kao-Ian Wathanyu, Limphirat Wanwisa, Tipplook Mongkol, Teshima Katsuya, Theerthagiri Jayaraman, Choi Myong Yong, Kheawhom Soorathep

机构信息

Department of Chemical Engineering, Faculty of Engineering, Chulalongkorn University, Bangkok 10330, Thailand.

Synchrotron Light Research Institute (Public Organization), 111 University Avenue, Muang District, Nakhon Ratchasima 30000, Thailand.

出版信息

ACS Appl Mater Interfaces. 2025 Aug 20;17(33):46936-46951. doi: 10.1021/acsami.5c07064. Epub 2025 Jul 22.

Abstract

Despite their critical importance, developing sustainable high-performance supercapacitor (SC) electrodes with long-term stability poses significant challenges. Herein, we report a novel ternary composite electrode in which Ag/Ni-doped manganese oxide (Ag/NiO@MnO) is supported on human hair-derived activated carbon (HHC). This composite is synthesized via a one-pot hydrothermal process followed by thermal annealing at 800 °C, a strategy that creates a conductive Ag/Ni bimetallic network and abundant oxygen vacancies in the NiO and MnO phases. During operation, operando X-ray absorption spectroscopy (XAS) confirms reversible dual-ion redox transitions (Mn/Mn and Ni/Ni) in the cathode, highlighting the material's enhanced redox activity. As a result, HHC-supported Ag/NiO@MnO exhibits an exceptional specific capacitance (Cs) of 1770 F g at 5 mV s in three-electrode tests. When assembled into an asymmetric hybrid supercapacitor (AHSC), the device delivers a high energy density of 37.53 Wh kg and a power density of 2251.8 W kg at 3 A g while retaining ∼82% of its initial capacitance after 5000 charge-discharge cycles. These results confirm the effectiveness of our sustainable HHC-supported Ag/NiO@MnO framework in addressing the enduring trade-off between energy density, power density, and cycling stability in next-generation SCs.

摘要

尽管具有至关重要的意义,但开发具有长期稳定性的可持续高性能超级电容器(SC)电极仍面临重大挑战。在此,我们报道了一种新型三元复合电极,其中银/镍掺杂的氧化锰(Ag/NiO@MnO)负载在人发衍生的活性炭(HHC)上。这种复合材料通过一锅水热法合成,随后在800°C下进行热退火,该策略在NiO和MnO相中创建了导电的Ag/Ni双金属网络和丰富的氧空位。在运行过程中,原位X射线吸收光谱(XAS)证实了阴极中可逆的双离子氧化还原转变(Mn/Mn和Ni/Ni),突出了该材料增强的氧化还原活性。因此,在三电极测试中,HHC负载的Ag/NiO@MnO在5 mV s时表现出1770 F g的优异比电容(Cs)。当组装成不对称混合超级电容器(AHSC)时,该器件在3 A g时提供37.53 Wh kg的高能量密度和2251.8 W kg的功率密度,同时在5000次充放电循环后保留其初始电容的约82%。这些结果证实了我们可持续的HHC负载的Ag/NiO@MnO框架在解决下一代SCs中能量密度、功率密度和循环稳定性之间持久权衡方面的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afd8/12371695/ea8462b3f7d1/am5c07064_0001.jpg

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