Design of piezoelectric ZnO based catalysts for ammonia production from N2 and H2O under ultrasound sonication

Fengping Peng, Jingyuan Lin, Haozhen Li, Ziming Liu, Qihang Su, Zhe Wu, Yafeng Xiao, Hongbo Yu, Mingji Zhang, Chunzheng Wu, Wei Wang, Chunhua Lu

Research output: Contribution to journalArticlepeer-review

46 Scopus citations

Abstract

Using mechanical waste energy to drive the ammonia production from N2 and water under ambient conditions is of great significance yet still very challenging. In this work, we designed ZnO microrods and ZnO-Ag heterostructures that exhibited high activity, selectivity, and stability in the production of ammonia under ultrasound sonication. Combining the piezoelectric force microscopy (PFM), temperature programed desorption of N2 (N2-TPD), electron spin resonance (ESR), electrochemical analysis with finite element numerical simulation, we found that the size and morphology of ZnO greatly impacted the shape deformation as well as the piezoelectric potential across the material, while the oxygen vacancies were essential for the adsorption and activation of N2. Loading Ag NPs onto ZnO could further enhance the N2 fixation activity by generating local strain at the Ag-ZnO interface, enhancing the chemical adsorption of N2, and facilitating the separation of piezo-generated electrons and holes. Our work demonstrates the design principles of highly active piezoelectric catalysts for N2 fixation.

Original languageEnglish
Article number107020
JournalNano Energy
Volume95
DOIs
StatePublished - May 2022

Keywords

  • N fixation
  • Oxygen vacancies
  • Piezoelectric effect
  • ZnO

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