Chemically Coupled Cobalt Oxide Nanosheets Decorated onto the Surface of Multiwall Carbon Nanotubes for Favorable Oxygen Evolution Reaction

Author:

Mugheri Abdul Qayoom1,Tahira Aneela2,Aftab Umair3,Bhatti Adeel Liaquat4,Lal Ramesh5,Bhatti Muhammad Ali6,Memon Ghulam Zuhra1,Mallah Arfana Begum1,Abassi Mazhar Ali4,Nafady Ayman7,Ibupoto Zafar Hussain1

Affiliation:

1. M. A Kazi Institute of Chemistry University of Sindh Jamshoro, 76080, Sindh Pakistan

2. Department of Science and Technology, Campus Norrköping, Linköping University, SE-60174 Norrköping, Sweden

3. Mehran University of Engineering and Technology, 76080 Jamshoro, Sindh Pakistan

4. Institute of Physics University of Sindh Jamshoro, 76080, Sindh Pakistan

5. Shah Abdul Latif University of Khairpur Mirs, 66111, Sindh Pakistan

6. Department of Environmental Sciences University of Sindh Jamshoro, 76080, Sindh Pakistan

7. Department of Chemistry, College of Science, King Saud University, Riyadh 11451, Saudi Arabia

Abstract

Cobalt oxide has been widely investigated among potential transition metal oxides for the electrochemical energy conversion, storage, and water splitting. However, they have inherently low electronic conductivity and high corrosive nature in alkaline media. Herein, we propose a promising and facile approach to improve the conductivity and charge transport of cobalt oxide Co3O4 through chemical coupling with well-dispersed multiwall carbon nanotubes (MWCNTs) during hydrothermal treatment. The morphology of prepared composite material consisting of nanosheets which are anchored on the MWCNTs as confirmed by scanning electron microscopy (SEM). A cubic crystalline system is exhibited by the cobalt oxide as confirmed by the X-ray diffraction study. The Co, O, and C are the only elements present in the composite material. FTIR study has indicated the successful coupling of cobalt oxide with MWCNTs. The chemically coupled cobalt oxide onto the surface of MWCNTs composite is found highly active towards oxygen evolution reaction (OER) with a low onset potential 1.44 V versus RHE, low overpotential 262 mV at 10 mAcm-2 and small Tafel slope 81 mV dec-1. For continuous operation of 40 hours during durability test, no decay in activity was recorded. Electrochemical impedance study further revealed a low charge transfer resistance of 70.64 Ohms for the composite material during the electrochemical reaction and which strongly favored OER kinetics. This work provides a simple, low cost, and smartly designing electrocatalysts via hydrothermal reaction for the catalysis and energy storage applications.

Publisher

American Scientific Publishers

Subject

Condensed Matter Physics,General Materials Science,Biomedical Engineering,General Chemistry,Bioengineering

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