Hydrothermal Synthesis of Bimetallic Spinel MCo2O4/MXene (M = Ni, Zn) Composites as Efficient Supercapacitor Electrodes

超级电容器 电容 双金属片 电化学 阳极 材料科学 尖晶石 电极 水热合成 化学工程 阴极 比能量 假电容 异质结 储能 热液循环 金属 碳纤维 复合材料 纳米技术 碳化物 比表面积 功率密度 氧化还原 化学
作者
Komal Rao,Muhammad Rizwan Saleem,Muhammad Ehsan Mazhar,Javed Ahmad,Muhammad Imran Khan,Muhammad Bilal,Waseem Abbas,N. Bano,Aqsa Naz,Abdallah Shanableh,Mehak Bukhari,Rafael Luque
出处
期刊:Applied Organometallic Chemistry [Wiley]
卷期号:39 (10) 被引量:16
标识
DOI:10.1002/aoc.70390
摘要

ABSTRACT MXene is an ideal choice for electrode material in supercapacitors due to its outstanding metallic conductivity, hydrophilic nature, and surface redox activity as well as superior chemical stability. The two‐dimensional (2D) metal carbide NbC 2 Tₓ‐MXene exhibits significant potential as a pseudocapacitive electrode material for energy storage applications. Restacking of MXene's layers makes, however, difficult access of ions, which lowers volumetric performance and also reduces ion and electron transport. To overcome this challenge, different metal‐based oxides with MXene composites, namely, MCo 2 O 4 /composite (where M = Ni and Zn), were synthesized using a simple cost‐effective hydrothermal method through a self‐assembly process. These heterostructure composites reduced the specific capacitance loss brought on by volumetric variations by preventing MXene layers from restacking and at the same time improving the exposure of electrochemically active sites in MCo 2 O 4 /composite. Structural, morphological, and electrochemical analysis revealed that both composites have efficient and remarkable electrochemical properties with unique morphology. Detailed electrochemical analysis revealed that NiCo 2 O 4 /MXene have pseudocapacitive behavior with greater specific capacitance as compared with ZnCo 2 O 4 /MXene. NiCo 2 O 4 /MXene exhibited specific capacitance of 1575 F g −1 at 1 A g −1 with 89% cyclic stability over 10,000 cycles. Moreover, asymmetric supercapacitors constructed using NiCo 2 O 4 @Nb₂C as cathode and commercial activated carbon (AC) as anode demonstrated a high energy density of 31.2 Wh kg −1 at a power density of 800 W kg −1 Additionally, they exhibited excellent long‐term cycling stability, retaining 81.2% of their initial capacitance after 5000 cycles.
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