Rapid flame induced dual-metal doping on WO3 electrode for boosting photo-electrochemical water oxidationopen access
- Authors
- Roh, Seung Hun; Kim, Jaekyum; So, Won; Li, Yuankai; Hong, Won Tae; Kwon, Hyun Min; Jo, Sae Byeok; Yang, Wooseok; Oh, Byung-Keun; Chung, Chan-Hwa; Park, Jongwook; Ahn, Chisung; Kim, Byung-Hyun; Kim, Jung Kyu
- Issue Date
- Oct-2025
- Publisher
- OAE PUBLISHING INC
- Keywords
- Flame treatment; dual metal co-doping; oxygen evolution reaction; photoelectrochemical reaction; water splitting
- Citation
- ENERGY MATERIALS, v.5, no.10
- Indexed
- ESCI
- Journal Title
- ENERGY MATERIALS
- Volume
- 5
- Number
- 10
- URI
- https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/126333
- DOI
- 10.20517/energymater.2025.59
- ISSN
- 2770-5900
2770-5900
- Abstract
- A bidirectional co-doping of transition metal Fe and post-transition metal Sn on WO3 photoanode via a facile one step flame-doping process demonstrates the challenging amelioration of both thermodynamic charge migration and surface catalytic kinetics, achieving high-efficient photoelectrochemical (PEC) water oxidation reaction in a neutral pH. The direct flamethrower with rapid thermal flux effectively induces the bidirectional doping of Fe3+ and Sn4+ into WO3 without damaging its nanostructure and fluorine-doped tin oxide glass substrate. From the synergetic effect of the dual-metal doping, the photoinduced charge migration and the surface water oxidation kinetics are effectively ameliorated. As a result, the Fe/Sn co-doped WO3 photoanode shows significantly enhanced PEC response with 6.16-fold higher photocurrent density performance at 1.23 VRHE than bare WO3. This work highlights the facile metal atom co-doping method without affecting intrinsic properties of photoanode and substrate for boosting the PEC water splitting performance and solar fuel production.
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