4.6 Article

Earth-abundant coal-derived carbon nanotube/carbon composites as efficient bifunctional oxygen electrocatalysts for rechargeable zinc-air batteries

Journal

JOURNAL OF ENERGY CHEMISTRY
Volume 56, Issue -, Pages 87-97

Publisher

ELSEVIER
DOI: 10.1016/j.jechem.2020.07.040

Keywords

Carbon nanotubes; Coal; Heteroatom-doping; Oxygen reaction; Zinc-air batteries

Funding

  1. National Natural Science Foundation of China [21605067, 21763023]
  2. Talent Project Grant of the University of Science and Technology Liaoning [601011507-06]
  3. Doctoral Start-up Research Funding of the University of Science and Technology Liaoning, China [USTL010178]

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This study presents a facile method to synthesize 3D carbon nanotube/carbon composites with multiple active sites, which efficiently catalyze both ORR and OER. The composite demonstrates high activity, fast kinetics, and long-term stability, showing promising applications in solar-powered water splitting systems and Zn-air batteries.
The exploration of active and robust electrocatalysts for both the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) is the bottleneck to realize the commercialization of rechargeable metal-air batteries and regenerative fuel cells. Here we report facile synthesis of three-dimensional (3D) carbon nanotube (CNT)/carbon composites using earth-abundant coal as the carbon source, hydrogen reductant and heteroatom dopant to grow CNTs. The prepared composite featuring 3D structural merits and multiple active sites can efficiently catalyze both ORR and OER, affording high activity, fast kinetics, and long-term stability. With the additional incorporation of manganese, the developed catalyst afforded a potential difference of 0.80 V between ORR at the half wave potential and OER at a current density of 10 mA cm(-2). The optimized sample has presented excellent OER performance within a constructed solar-powered water splitting system with continuously generating oxygen bubbles at anode. Notably, it can be further used as a durable air-electrode catalyst in constructed Zn-air battery, delivering an initial discharge/charge voltage gap of 0.73 V, a remained voltaic efficiency of 61.2% after 160 cycles and capability to power LED light for at least 80 h. This study provides an efficient approach for converting traditional energy resource i.e. coal to value-added alternative oxygen electrocatalysts in renewable energy conversion systems. (C) 2020 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.

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