TY - JOUR
T1 - Non-metal fluorine doping in Ruddlesden–Popper perovskite oxide enables high-efficiency photocatalytic water splitting for hydrogen production
AU - Han, Xiao
AU - Liu, Pengyun
AU - Ran, Ran
AU - Wang, Wei
AU - Zhou, Wei
AU - Shao, Zongping
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2022/1
Y1 - 2022/1
N2 - Perovskite oxides have been extensively investigated as catalysts for solar water splitting to generate hydrogen (H2) due to the easily tuned band gap, distinct optical/chemical properties and superior structural/compositional flexibility. Cation doping is widely used to boost the photocatalytic activity of perovskite oxides while the anion doping into the oxygen (O)-site of perovskite oxides is less investigated. Herein, we present a non-metal fluorine (F−) doping strategy to improve the photocatalytic activity of Ruddlesden–Popper Sr2TiO4 perovskites for H2 evolution reaction (HER). By optimizing the F− doping amount in Sr2TiO4−xFx, the highest H2 generation rate of 282 μmol/h/g is achieved by Sr2TiO3.97F0.03 under full-range sunlight illumination (λ ≥ 250 nm), which is 44% larger than that of Sr2TiO4 (195 μmol/h/g). Such enhancement in the photocatalytic HER activity of Sr2TiO3.97F0.03 can be assigned to the increased surface oxygen vacancy amount, suppressed charge carrier recombination, more negative conduction band position as well as well-balanced band gap energy, particle size, and specific surface area induced by the F− doping. Our current study presents a facile and effective strategy for the future design of highly efficient catalysts for solar water splitting.
AB - Perovskite oxides have been extensively investigated as catalysts for solar water splitting to generate hydrogen (H2) due to the easily tuned band gap, distinct optical/chemical properties and superior structural/compositional flexibility. Cation doping is widely used to boost the photocatalytic activity of perovskite oxides while the anion doping into the oxygen (O)-site of perovskite oxides is less investigated. Herein, we present a non-metal fluorine (F−) doping strategy to improve the photocatalytic activity of Ruddlesden–Popper Sr2TiO4 perovskites for H2 evolution reaction (HER). By optimizing the F− doping amount in Sr2TiO4−xFx, the highest H2 generation rate of 282 μmol/h/g is achieved by Sr2TiO3.97F0.03 under full-range sunlight illumination (λ ≥ 250 nm), which is 44% larger than that of Sr2TiO4 (195 μmol/h/g). Such enhancement in the photocatalytic HER activity of Sr2TiO3.97F0.03 can be assigned to the increased surface oxygen vacancy amount, suppressed charge carrier recombination, more negative conduction band position as well as well-balanced band gap energy, particle size, and specific surface area induced by the F− doping. Our current study presents a facile and effective strategy for the future design of highly efficient catalysts for solar water splitting.
KW - Anion doping
KW - Hydrogen evolution reaction
KW - Metal oxide
KW - Photocatalysis
KW - Ruddlesden–Popper compound
UR - http://www.scopus.com/inward/record.url?scp=85120647814&partnerID=8YFLogxK
U2 - 10.1016/j.mtener.2021.100896
DO - 10.1016/j.mtener.2021.100896
M3 - 文章
AN - SCOPUS:85120647814
SN - 2468-6069
VL - 23
JO - Materials Today Energy
JF - Materials Today Energy
M1 - 100896
ER -