TY - JOUR
T1 - Violet phosphorus quantum dots regulate exciton dissociation and radial charge flow in crystalline g-C3N4 nanorods for boosting photocatalytic H2 evolution
AU - Wu, Xi
AU - Yang, Qiaoling
AU - Zhang, Bin
AU - Zhong, Huihai
AU - Zhao, Yuqi
AU - Zhang, Jinying
AU - Guo, Quansheng
AU - Wang, Xin
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2024/11/15
Y1 - 2024/11/15
N2 - The photocatalytic performance of exciton-rich g-C3N4 is hindered due to its strong electron-hole Coulomb interactions and disordered charge dynamic behavior. Herein, oriented photoelectrons transfer in crystalline g-C3N4 nanorods (CCNR) is significantly boosted by marginal encapsulation with violet phosphorus quantum dots (VPQDs), forming 0D/1D VPQDs/CCNR heterostructure with lateral P–N bonds. Experimental and theoretical results revealed that the accelerated exciton dissociation was attributed to the strong built-in electric field between CCNR and VPQDs, which reduced the electrostatic potential within each π-conjugated plane, thus providing a driving force for exciton dissociation. A subsequent radial charge flow from CCNR to the active sites on the VPQDs improved the photocatalytic performance of the material. The optimized VPQDs/CCNR exhibited an excellent photocatalytic H2 evolution rate of 7084.98 µmol g-1h−1 with an apparent quantum yield of 16.1 % at 400 nm. This study offers in-depth insights into regulating exciton dissociation and oriented charge flow in CCNR.
AB - The photocatalytic performance of exciton-rich g-C3N4 is hindered due to its strong electron-hole Coulomb interactions and disordered charge dynamic behavior. Herein, oriented photoelectrons transfer in crystalline g-C3N4 nanorods (CCNR) is significantly boosted by marginal encapsulation with violet phosphorus quantum dots (VPQDs), forming 0D/1D VPQDs/CCNR heterostructure with lateral P–N bonds. Experimental and theoretical results revealed that the accelerated exciton dissociation was attributed to the strong built-in electric field between CCNR and VPQDs, which reduced the electrostatic potential within each π-conjugated plane, thus providing a driving force for exciton dissociation. A subsequent radial charge flow from CCNR to the active sites on the VPQDs improved the photocatalytic performance of the material. The optimized VPQDs/CCNR exhibited an excellent photocatalytic H2 evolution rate of 7084.98 µmol g-1h−1 with an apparent quantum yield of 16.1 % at 400 nm. This study offers in-depth insights into regulating exciton dissociation and oriented charge flow in CCNR.
KW - Crystalline g-CN nanorods
KW - Exciton dissociation
KW - Photocatalytic H evolution
KW - Radial charge flow
KW - Violet phosphorus quantum dots
UR - https://www.scopus.com/pages/publications/85207783085
U2 - 10.1016/j.cej.2024.157171
DO - 10.1016/j.cej.2024.157171
M3 - 文章
AN - SCOPUS:85207783085
SN - 1385-8947
VL - 500
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 157171
ER -