Ajou University repository

Solution-processed nanoporous and faceted CuO electrocatalyst for enhanced solar-to-hydrogen and nitrate-to-ammonia production
  • Tan, Runfa ;
  • Kang, Min Je ;
  • Qu, Li ;
  • Hwang, Sung Won ;
  • Hong, Seo Yeong ;
  • Jeong, Yoo Jae ;
  • Han, Hyun Soo ;
  • Kim, Dong Hoe ;
  • Lee, Sangwook ;
  • Cho, In Sun
Citations

SCOPUS

4

Citation Export

Publication Year
2024-05-01
Publisher
Elsevier Ltd
Citation
Journal of Water Process Engineering, Vol.61
Keyword
Cupric oxideElectrocatalytic nitrate reductionFacetNanoporousPhotoelectrochemical hydrogen productionPolyesterification
All Science Classification Codes (ASJC)
BiotechnologySafety, Risk, Reliability and QualityWaste Management and DisposalProcess Chemistry and Technology
Abstract
Porosity control and facet engineering of electrocatalysts are critical for sustainable hydrogen production and wastewater upcycling into value-added chemicals. Herein, we report the sol-gel synthesis of a nanoporous faceted cupric oxide (nf-CuO) electrocatalyst film via a controlled polyesterification reaction. The formation mechanism of the unique nf-CuO morphology was analyzed and proposed. Notably, ligand additives such as ethylene glycol, citric acid, and polyethylene glycol function as morphology-controlling agents, and the polyesterification reaction between ligands can form covalent gel networks with trapped Cu ions. During thermal annealing, nucleation and nanoparticle growth along the covalent gel network enabled the formation of nanoporous and multifaceted CuO electrocatalysts on fluorine-doped SnO2 substrates, which was verified using ex-situ thermogravimetric/differential thermal analysis, Fourier transform infrared spectroscopy and transmission electron microscopy. The optimally synthesized nf-CuO exhibited high electrocatalytic activity in both photoelectrochemical hydrogen production and electrochemical nitrate reduction reactions. This enhanced performance was attributed to the nanoporosity-induced light-harvesting enhancement, enlarged surface area, and increased number of active sites. Our work emphasizes the importance of additive engineering to simultaneously control the porosity and facets of electrocatalysts and demonstrates its effectiveness in enhancing the electrocatalytic activity of diverse energy conversion devices.
ISSN
2214-7144
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34123
DOI
https://doi.org/10.1016/j.jwpe.2024.105322
Fulltext

Type
Article
Funding
This work was supported by the National Research Foundation of Korea (NRF) grant funded by the Korean government (MSIT) (No. RS-2023-00246524). This research was also supported by the H2KOREA funded by the Ministry of Education (2022Hydrogen fuel cell-002, Innovative Human Resources Development Project for Hydrogen Fuel Cells).This research was supported by the Basic Science Research Program of the National Research Foundation of Korea funded by the Ministry of Science, ICT and Future Planning (grant number NRF-2021R1A4A1031357 ). This work was also supported by the National Research Foundation of Korea (NRF) grant funded by the Korean government ( MSIT ) (No. RS-2023-00246524 ). This research was also supported by the H2KOREA funded by the Ministry of Education (2022Hydrogen fuel cell-002, Innovative Human Resources Development Project for Hydrogen Fuel Cells).
Show full item record

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Cho, In Sun  Image
Cho, In Sun 조인선
Department of Materials Science Engineering
Read More

Total Views & Downloads

File Download

  • There are no files associated with this item.