Logo image
Specific Cu2O surfaces for electrocatalytic oxygen reduction reaction
期刊文章   開放取用(OA)   同儕審查

Specific Cu2O surfaces for electrocatalytic oxygen reduction reaction

Chih-Chun Chang, Jui-Cheng Kao, Yu-Chieh Lo, Jyh-Pin Chou, Shang-Cheng Lin, Chun-Chia Wen 和 Michael Hsuan-Yi Huang
Journal of materials chemistry. A, Materials for energy and sustainability, 卷.13(18), 頁碼.13186-13194
06/05/2025
Web of Science ID: WOS:001456174800001

摘要

Chemistry Chemistry, Physical Energy & Fuels Materials Science, Multidisciplinary Science & Technology Materials Science Physical Sciences Technology
Examination of the facet effects of metal oxide crystals on the oxygen reduction reaction (ORR) has been inadequately investigated due to the limited availability of polyhedra that expose only specific surfaces. Here, cuprous oxide cubes, octahedra, and rhombic dodecahedra, exposing the respective {100}, {111}, and {110} surfaces, were incorporated into a matrix of carbon nanotubes (CNTs) to enhance electrical conductivity. The composites were evaluated for their electrocatalytic ORR activity. The rhombic dodecahedra/CNTs composite exhibited the highest ORR activity, followed by the octahedra/CNTs and then the cubes/CNTs. Commercial Cu2O powder/CNTs showed notably lower ORR activity, demonstrating the importance of catalyst surface control for ORR performance. Kouteck & yacute;-Levich plots showed that these Cu2O polyhedra were highly selective towards the four-electron pathway in the ORR, whereas the commercial Cu2O powder/CNTs catalyst proceeded via the two-electron pathway. Durability tests revealed a reversed trend, with the cubes/CNTs being the most stable electrocatalyst. Density functional theory (DFT) calculations indicated the weakest O2 adsorption on the Cu2O {110} surface. The free energy diagrams and 2D volcano plot further established the {110} surface as the most active towards ORR, while strong OH intermediate binding on the {100} and {111} surfaces led to lower theoretical limiting potentials and higher overpotentials. DFT results provided mechanistic insights to explain the experimental facet effects.

檔案與連結 (2)

pdf
d4ta08855g - Chih-Chun Chang1.71 MB下載檢視
開放存取(OA)
url
https://doi.org/10.1039/d4ta08855g檢視
已出版(紀錄版本)

相關連結

詳細資料

Logo image