| Literature DB >> 31294538 |
Xuerong Zheng1,2, Yanhui Cao1, Xueli Zheng1,3, Meng Cai2, Jinfeng Zhang1, Jihui Wang1, Wenbin Hu1.
Abstract
Exploring efficient bifunctional oxygen electrocatalysts is a critical element for developing high-power-density metal-air batteries. Here, we propose an interface and oxygen vacancy engineering strategy to integrate subtle lattice distortions, oxygen vacancies, and nanopores on the surface of NixCo1-xSe2-O interface nanocrystals, which exhibit efficient bifunctional catalytic performances for oxygen evolution and reduction. The results from X-ray absorption spectroscopy and electron spin resonance spectroscopy demonstrate that the defect structure can enlarge the number of active sites for electrocatalytic performances. Flexible Zn-air battery using NixCo1-xSe2-O as a cathode displays large specific capacity and remarkable stability even after twisting at any angle, thus showing potential for wearable and portable electronic device application. The implementation of our method provides a powerful strategy for preparing advanced catalysts for energy utilization.Entities:
Keywords: NiCoSe interface nanocrystals; flexible Zn−air batteries; interface engineering; oxygen evolution reaction; oxygen reduction reaction; oxygen vacancies
Year: 2019 PMID: 31294538 DOI: 10.1021/acsami.9b08424
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229