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Doping-modulated strain control of bifunctional electrocatalysis for rechargeable zinc-air batteries

  • Zhao Li
  • , Qi Wang
  • , Xiaowan Bai
  • , Maoyu Wang
  • , Zhenzhong Yang
  • , Yingge Du
  • , George E. Sterbinsky
  • , Duojie Wu
  • , Zhenzhen Yang
  • , Huajun Tian
  • , Fuping Pan
  • , Meng Gu*
  • , Yuanyue Liu
  • , Zhenxing Feng
  • , Yang Yang*
  • *Corresponding author for this work
  • University of Central Florida
  • Department of Materials Science and Engineering
  • Southern University of Science and Technology
  • The University of Texas at Austin
  • Oregon State University
  • Pacific Northwest National Laboratory
  • Physical and Computational Sciences Directorate
  • X-ray Science Division
  • United States Department of Energy
  • Argonne National Laboratory
  • Renewable Energy and Chemical Transformation Cluster
  • Department of Chemistry

Research output: Contribution to journalArticlepeer-review

Abstract

Changes in the local atomic arrangement in a crystal caused by lattice-mismatch-induced strain can efficiently regulate the performance of electrocatalysts for zinc-air batteries (ZABs) in many manners, mainly due to modulated electronic structure configurations that affect the adsorption energies for oxygen-intermediates formed during oxygen reduction and evolution reactions (ORR and OER). However, the application of strain engineering in electrocatalysis has been limited by the strain relaxation caused by structural instability such as dissolution and destruction, leading to insufficient durability towards the ORR/OER. Herein, we propose a doping strategy to modulate the phase transition and formation of self-supported cobalt fluoride-sulfide (CoFS) nanoporous films using a low amount of copper (Cu) as a dopant. This well-defined Cu-CoFS heterostructure overcomes the obstacle of structural instability. Our study of the proposed Cu-CoFS also helps establish the structure-property relationship of strained electrocatalysts by unraveling the role of local strain in regulating the electronic structure of the catalyst. As a proof-of-concept, the Cu-CoFS electrocatalyst with doping-modulated strain exhibited superior onset potentials of 0.91 V and 1.49 V for the ORR and OER, respectively, surpassing commercial Pt/C@RuO2 and benchmarking non-platinum group metal (non-PGM) catalysts. ZABs with the Cu-CoFS catalyst delivered excellent charge/discharge cycling performance with an extremely low voltage gap of 0.5 V at a current density of 10 mA cm-2 and successively 0.93 V at a high current density of 100 mA cm-2 and afforded an outstanding peak power density of 255 mW cm-2.

Original languageEnglish
Pages (from-to)5035-5043
Number of pages9
JournalEnergy and Environmental Science
Volume14
Issue number9
DOIs
StatePublished - Sep 2021
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

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