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Electrodeposited Porous Mn1.5Co1.5O4/Ni Composite Electrodes for High-Voltage Asymmetric Supercapacitors

机译:用于高压不对称超级电容器的电沉积多孔Mn1.5Co1.5O4 / Ni复合电极

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摘要

Mesoporous Mn1.5Co1.5O4 (MCO) spinel films were prepared directly on a conductive nickel (Ni) foam substrate via electrodeposition and an annealing treatment as supercapacitor electrodes. The electrodeposition time markedly influenced the surface morphological, textural, and supercapacitive properties of MCO/Ni electrodes. The (MCO/Ni)-15 min electrode (electrodeposition time: 15 min) exhibited the highest capacitance among three electrodes (electrodeposition times of 7.5, 15, and 30 min, respectively). Further, an asymmetric supercapacitor that utilizes (MCO/Ni)-15 min as a positive electrode, a plasma-treated activated carbon (PAC)/Ni electrode as a negative electrode, and carboxymethyl cellulose-lithium nitrate (LiNO3) gel electrolyte (denoted as (PAC/Ni)//(MCO/Ni)-15 min) was fabricated. In a stable operation window of 2.0 V, the device exhibited an energy density of 27.6 Wh·kg−1 and a power density of 1.01 kW·kg−1 at 1 A·g−1. After 5000 cycles, the specific energy density retention and power density retention were 96% and 92%, respectively, demonstrating exceptional cycling stability. The good supercapacitive performance and excellent stability of the (PAC/Ni)//(MCO/Ni)-15 min device can be ascribed to the hierarchical structure and high surface area of the (MCO/Ni)-15 min electrode, which facilitate lithium ion intercalation and deintercalation at the electrode/electrolyte interface and mitigate volume change during long-term charge/discharge cycling.
机译:通过电沉积和作为超级电容器电极的退火处理,直接在导电镍(Ni)泡沫基板上直接制备了介孔Mn1.5Co1.5O4(MCO)尖晶石薄膜。电沉积时间明显影响了MCO / Ni电极的表面形态,质构和超电容性能。 (MCO / Ni)-15分钟电极(电沉积时间:15分钟)在三个电极中表现出最高的电容(分别为7.5、15和30分钟的电沉积时间)。此外,使用(MCO / Ni)-15 min作为正电极,经等离子体处理的活性炭(PAC)/ Ni电极作为负电极以及羧甲基纤维素-硝酸锂(LiNO3)凝胶电解质的不对称超级电容器(表示为制备(PAC / Ni)//(MCO / Ni)-15min)。在2.0 V的稳定工作窗口中,该器件在1 A时的能量密度为27.6 Wh·kg -1 ,功率密度为1.01 kW·kg -1 ·g -1 。在5000次循环之后,比能量保持率和功率密度保持率分别为96%和92%,这表明了出色的循环稳定性。 (PAC / Ni)//(MCO / Ni)-15 min电极的良好超电容性能和出色的稳定性可以归因于(MCO / Ni)-15 min电极的分层结构和高表面积,这有助于电极/电解质界面处的锂离子嵌入和脱嵌,并减轻了长期充电/放电循环过程中的体积变化。

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