TY - JOUR
T1 - Photostable hollow core-shell ZnSe@PDA-7 type-II heterojunction with built-in electric field for efficient photocatalytic generation of H2O2
AU - Li, Yubao
AU - Chen, Guangyuan
AU - Wu, Shaowen
AU - Lin, Chenyang
AU - Tang, Tingting
AU - Quan, Qina
AU - Lu, Yunyun
AU - Zhou, Shijian
AU - Kong, Yan
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/5/1
Y1 - 2025/5/1
N2 - Various strategies have been developed to prevent electron-hole recombination and photocorrosion in sulfur-based semiconductors, improving catalyst efficiency and enabling high-activity, stable photocatalytic H2O2 generation. In this study, we construct a hollow core-shell catalyst by tightly coating hollow ZnSe microspheres with an organic semiconductor polydopamine (PDA) via a self-polymerization method, effectively reduces the impact of photocorrosion on ZnSe. DFT calculations confirmed the formation of a built-in electric field at the ZnSe/PDA interface, which, under its influence, promotes the creation of a type-II heterojunction favorable for photocatalytic H2O2 generation. The built-in electric field and type-II heterojunction enhance charge carrier transfer and separation. The PDA coating also improves O2 adsorption and light utilization of ZnSe, further enhancing H2O2 photocatalytic performance. Results show that ZnSe@PDA-7, with optimal PDA loading, achieves an H2O2 generation rate of 1978.5 μmol g-1 h-1 under visible light irradiation in pure water. This method of organic polymer coating on chalcogenide semiconductors effectively mitigates photocorrosion effects and improves charge carrier separation, offering a sustainable solution for clean energy synthesis.
AB - Various strategies have been developed to prevent electron-hole recombination and photocorrosion in sulfur-based semiconductors, improving catalyst efficiency and enabling high-activity, stable photocatalytic H2O2 generation. In this study, we construct a hollow core-shell catalyst by tightly coating hollow ZnSe microspheres with an organic semiconductor polydopamine (PDA) via a self-polymerization method, effectively reduces the impact of photocorrosion on ZnSe. DFT calculations confirmed the formation of a built-in electric field at the ZnSe/PDA interface, which, under its influence, promotes the creation of a type-II heterojunction favorable for photocatalytic H2O2 generation. The built-in electric field and type-II heterojunction enhance charge carrier transfer and separation. The PDA coating also improves O2 adsorption and light utilization of ZnSe, further enhancing H2O2 photocatalytic performance. Results show that ZnSe@PDA-7, with optimal PDA loading, achieves an H2O2 generation rate of 1978.5 μmol g-1 h-1 under visible light irradiation in pure water. This method of organic polymer coating on chalcogenide semiconductors effectively mitigates photocorrosion effects and improves charge carrier separation, offering a sustainable solution for clean energy synthesis.
KW - Built-in electric field
KW - PDA
KW - Photocatalytic HO generation
KW - Type-II heterojunction
KW - ZnSe, Hollow core-shell
UR - http://www.scopus.com/inward/record.url?scp=105002488290&partnerID=8YFLogxK
U2 - 10.1016/j.surfin.2025.106427
DO - 10.1016/j.surfin.2025.106427
M3 - 文章
AN - SCOPUS:105002488290
SN - 2468-0230
VL - 64
JO - Surfaces and Interfaces
JF - Surfaces and Interfaces
M1 - 106427
ER -