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Paving the road toward the use of β-Fe(2)O(3) in solar water splitting: Raman identification, phase transformation and strategies for phase stabilization

Although β-Fe(2)O(3) has a high theoretical solar-to-hydrogen efficiency because of its narrow band gap, the study of β-Fe(2)O(3) photoanodes for water splitting is elusive as a result of their metastable nature. Raman identification of β-Fe(2)O(3) is theoretically and experimentally investigated in...

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Detalles Bibliográficos
Autores principales: Zhang, Ningsi, Wang, Xin, Feng, Jianyong, Huang, Huiting, Guo, Yongsheng, Li, Zhaosheng, Zou, Zhigang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8288852/
https://www.ncbi.nlm.nih.gov/pubmed/34692125
http://dx.doi.org/10.1093/nsr/nwaa039
Descripción
Sumario:Although β-Fe(2)O(3) has a high theoretical solar-to-hydrogen efficiency because of its narrow band gap, the study of β-Fe(2)O(3) photoanodes for water splitting is elusive as a result of their metastable nature. Raman identification of β-Fe(2)O(3) is theoretically and experimentally investigated in this study for the first time, thus clarifying the debate about its Raman spectrum in the literature. Phase transformation of β-Fe(2)O(3) to α-Fe(2)O(3) was found to potentially take place under laser and electron irradiation as well as annealing. Herein, phase transformation of β-Fe(2)O(3) to α-Fe(2)O(3) was inhibited by introduction of Zr doping, and β-Fe(2)O(3) was found to withstand a higher annealing temperature without any phase transformation. The solar water splitting photocurrent of the Zr-doped β-Fe(2)O(3) photoanode was increased by 500% compared to that of the pure β-Fe(2)O(3) photoanode. Additionally, Zr-doped β-Fe(2)O(3) exhibited very good stability during the process of solar water splitting. These results indicate that by improving its thermal stability, metastable β-Fe(2)O(3) film is a promising photoanode for solar water splitting.