Spinel-Structured NiCo2O4 Nanorods as Energy Efficient Electrode for Supercapacitor and Lithium Ion Battery Applications

被引:21
|
作者
Divya, Shalini [1 ]
Pongilat, Remith [2 ]
Kuila, Tapas [3 ]
Nallathamby, Kalaiselvi [2 ]
Srivastava, Suneel Kumar [4 ]
Roy, Poulomi [1 ]
机构
[1] Birla Inst Technol Mesra, Dept Chem, Ranchi 835215, Jharkhand, India
[2] CSIR Cent Elect Res Inst, Karaikkudi 630006, Tamil Nadu, India
[3] CSIR Cent Mech Engn Res Inst, Surface Engn & Tribol Div, Mahatma Gandhi Ave, Durgapur 713209, W Bengal, India
[4] Indian Inst Technol Kharagpur, Dept Chem, Kharagpur 721302, W Bengal, India
关键词
Mixed Metal Oxides; Nanorods; Growth Mechanism; Supercapacitor; Lithium Ion Battery; HIGH-PERFORMANCE SUPERCAPACITORS; NANOWIRE ARRAYS; ANODE MATERIALS; ELECTROCHEMICAL CAPACITORS; NICKEL COBALTITE; SUPERIOR ANODE; NI FOAM; OXIDE; MICROSPHERES; NANOSHEETS;
D O I
10.1166/jnn.2016.12682
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nickel cobaltite (NiCo2O4) nanorods with different aspect ratios have been successfully prepared by facile synthetic method from nickel-cobalt-oxalato complex as a single-source precursor without using any template. The as-prepared complex itself exhibits nanorod morphology due to its polymeric chain-like structure, which under calcination process converted into nickel cobaltite retaining its one-dimensional morphology. The growth of nanorods has a major dependence upon factors such as molar ratios of Ni- and Co-salts, reaction temperature, duration and pH of the medium. The nanorod morphology is expected to provide better electronic transportation in compared to zero-dimensional nanomaterials. Accordingly, NiCo2O4 nanorods upon exploitation as electrode material in supercapacitor and lithium ion battery applications showed good electrochemical performances. As supercapacitor, they exhibited large charge storage capacity with the specific capacitance value of similar to 200 F g(-1) at a current rate of 1 A g(-1) and good cyclic stability. The material also demonstrated a capacity as high as similar to 600 mAh g(-1) and a progressive capacity 400 mAh g(-1) after 25 cycles while deployed as an anode material in lithium ion battery applications.
引用
收藏
页码:9761 / 9770
页数:10
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