4.7 Article

Synchronous Defect and Interface Engineering of NiMoO4 Nanowire Arrays for High-Performance Supercapacitors

期刊

NANOMATERIALS
卷 12, 期 7, 页码 -

出版社

MDPI
DOI: 10.3390/nano12071094

关键词

NiMoO4 nanowire arrays; oxygen vacancies; core-shell electrode structure; asymmetric supercapacitors

资金

  1. National Natural Science Foundation of China [52162037]
  2. Yunnan Fundamental Research Projects [2019FD113, 202101AT070120]

向作者/读者索取更多资源

In this study, defect and interface engineering were used to develop a high-performance electrode material, NiMoO4-x@C nanowire arrays. The resulting composite exhibited excellent electrical conductivity and cycling stability, making it a promising material for electrochemical energy storage.
Developing high-performance electrode materials is in high demand for the development of supercapacitors. Herein, defect and interface engineering has been simultaneously realized in NiMoO4 nanowire arrays (NWAs) using a simple sucrose coating followed by an annealing process. The resultant hierarchical oxygen-deficient NiMoO4@C NWAs (denoted as NiMoO4-x@C) are grown directly on conductive ferronickel foam substrates. This composite affords direct electrical contact with the substrates and directional electron transport, as well as short ionic diffusion pathways. Furthermore, the coating of the amorphous carbon shell and the introduction of oxygen vacancies effectively enhance the electrical conductivity of NiMoO4. In addition, the coated carbon layer improves the structural stability of the NiMoO4 in the whole charging and discharging process, significantly enhancing the cycling stability of the electrode. Consequently, the NiMoO4-x@C electrode delivers a high areal capacitance of 2.24 F cm(-2) (1720 F g(-1)) at a current density of 1 mA cm(-2) and superior cycling stability of 84.5% retention after 6000 cycles at 20 mA cm(-2). Furthermore, an asymmetric super-capacitor device (ASC) has been constructed with NiMoO4-x@C as the positive electrode and activated carbon (AC) as the negative electrode. The as-assembled ASC device shows excellent electrochemical performance with a high energy density of 51.6 W h kg(-1) at a power density of 203.95 W kg(-1). Moreover, the NiMoO4//AC ASC device manifests remarkable cyclability with 84.5% of capacitance retention over 6000 cycles. The results demonstrate that the NiMoO4-x@C composite is a promising material for electrochemical energy storage. This work can give new insights on the design and development of novel functional electrode materials via defect and interface engineering through simple yet effective chemical routes.

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