A catalyst design for selective electrochemical reactions: direct production of hydrogen peroxide in advanced electrochemical oxidation
- Authors
- Ko, Young-Jin; Choi, Keunsu; Yang, Boram; Lee, Woong Hee; Kim, Jun-Yong; Choi, Jae Woo; Chae, Keun Hwa; Lee, Jun Hee; Hwang, Yun Jeong; Min, Byoung Koun; Oh, Hyung-Suk; Lee, Wook-Seong
- Issue Date
- 21-5월-2020
- Publisher
- ROYAL SOC CHEMISTRY
- Citation
- JOURNAL OF MATERIALS CHEMISTRY A, v.8, no.19, pp.9859 - 9870
- Indexed
- SCIE
SCOPUS
- Journal Title
- JOURNAL OF MATERIALS CHEMISTRY A
- Volume
- 8
- Number
- 19
- Start Page
- 9859
- End Page
- 9870
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/55651
- DOI
- 10.1039/d0ta01869d
- ISSN
- 2050-7488
- Abstract
- Hydrogen peroxide production by enhanced electrocatalysts is an attractive alternative to the present commercial process. While the subnano/atomic dispersion in noble metal nanocatalysts is known to strongly enhance their catalytic efficiency and chemoselectivity, their excessive surface energy and consequent coarsening seriously compromise their physical/chemical stability. Here, we report a subnano/atomically dispersed Pt-Ag alloy (by a simply modified polyol process) that is resistant to agglomeration/Ostwald ripening. This catalyst does not follow a conventional four-electron oxygen reduction reaction (ORR) but selectively produces H2O2 without excessive degradation of its activity. We clarified the role of the alloying element, Ag, as follows: (1) selective activation of two-electron ORR by inhibiting O-2 dissociation and (2) suppression of H2O2 decomposition by preventing the H2O2 adsorption. The present approach provides a convenient route for the direct generation of H2O2 as a simple byproduct of electricity generation by fuel-cell systems.
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