4.8 Article

Nanostructured (Co, Ni)-Based Compounds Coated on a Highly Conductive Three Dimensional Hollow Carbon Nanorod Array (HCNA) Scaffold for High Performance Pseudocapacitors

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 6, Issue 10, Pages 7735-7742

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/am5010199

Keywords

(Co, Ni)-based compounds; hollow carbon nanorod array; ZnO nanorod array; carbon fiber paper; three-dimensional; supercapacitors

Funding

  1. National Natural Science Foundation of China [51173055]
  2. Fundamental Research Funds for the Central Universities [2013QN158]
  3. Research Fund for the Doctoral Program of Higher Education of China [20130142120024]

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The electrochemical performance of the pseudocapacitive materials is seriously limited by poor electron and ions transport. Herein, an advanced integrated electrode has been designed by growing the pseudocapacitive materials, including CoxNi1-x(OH)(2), CoxNi1-xO, and (CoxNi1-x)(9)S-8, on a three-dimensional hollow carbon nanorod arrays (HCNA) scaffold. The HCNA scaffold not only can provide large surface area for increasing the mass loading of the pseudocapacitive materials, but also is with good electrical conductivity and hollow structure for facilitating fast electron and electrolyte ions transport, and thus improve the electrochemical performance. Particularly, in comparison with CoxNi1-x(OH)(2) and CoxNi1-xO nanosheets, (CoxNi1-x)(9)S-8 nanosheets on the HCNA scaffold exhibit better electrochemical performance. The discharge areal capacitance of the (CoxNi1-x)(9)S-8/HCNA electrode can be achieved to 1.32 F cm(-2) at 1 mA cm(-2), similar to 1.5 times as that of the CoxNi1-x(OH)(2)/HCNA electrode. The rate capability performance is also improved. 71.8% of the capacitance is retained with increasing the discharge current density from 1 to 10 mA cm(-2), in contrast to similar to 59.9% for the CoxNi1-x(OH)(2)/HCNA electrode. Remarkably, the cycling stability is significantly enhanced. similar to 111.2% of the initial capacitance is gained instead of decaying after the 3000 cycles at 8 mA cm(-2), while there is similar to 11.5% loss for the CoxNi1-x(OH)(2)/HCNA electrode tested under the same condition. Such good electrochemical performance can be ascribed by that (CoxNi1-x)(9)S-8 exhibits the similar energy storage mechanism as CoxNi1-x(OH)(2) and CoxNi1-xO, and more importantly, is with better electrical conductivity.

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