Facile synthesis of neuronal nickel–cobalt-manganese sulfide for asymmetric supercapacitors with excellent energy density

[Display omitted] •In-situ grown electrode materials exhibit large surface area and high porosity.•The material exhibits a high capacitance retention rate of 82.9 % at 10 A/g.•Assembled ACS devices can provide high energy density and high-power density. A neuronal nickel–cobalt–manganese sulfide mat...

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Veröffentlicht in:Journal of electroanalytical chemistry (Lausanne, Switzerland) Switzerland), 2023-03, Vol.932, p.117262, Article 117262
Hauptverfasser: Liu, Xueliang, Wang, Junli, Hu, Nianxiang, Liao, Jiang, Zong, Naixuan, Wei, Jinlong, Li, Min, Wang, Li, Xu, Ruidong, Yang, Linjing
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Sprache:eng
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Zusammenfassung:[Display omitted] •In-situ grown electrode materials exhibit large surface area and high porosity.•The material exhibits a high capacitance retention rate of 82.9 % at 10 A/g.•Assembled ACS devices can provide high energy density and high-power density. A neuronal nickel–cobalt–manganese sulfide material with a large surface area and high porosity can be homogeneously grown along a nickel foam via a simple one-step hydrothermal procedure. An optimal molar ratio of Ni, Co, Mn, and thiourea of 3:1:1:5 was obtained by adjusting the molar ratio of thiourea. This binder-free composite material supported by a nickel foam can be directly used as a battery-type electrode for supercapacitors. Under the optimal hydrothermal conditions, the battery-type electrode exhibited excellent electrochemical properties with a favorable specific capacitance (2805.3F/g, 1 A/g) and good rate properties (87.7 %, 10 A/g) because of the synergistic effect of the multiple transition metals. Furthermore, the battery-type electrode exhibited a remarkable capacitance retention rate (82.9 %, 10 A/g) after 10,000 cycles of electric charging and discharging owing to the addition of Mn, which suggests excellent cycle stability. Furthermore, an asymmetric supercapacitor (ASC) device prepared using the battery-type electrode material and activated carbon electrode exhibited a considerable energy density (86.9 W h kg−1) at a high power density (799.1 W kg−1). After charging for 26 s to 3.2 V, two ASC devices in series could light two red-light-emitting diodes for at least 300 s. Thus, a simple and effective synthesis scheme can be designed to prepare high-performing supercapacitors.
ISSN:1572-6657
1873-2569
DOI:10.1016/j.jelechem.2023.117262