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Visible-light driven boosting electron-hole separation in CsPbBr3 QDs@2D Cu-TCPP heterojunction and the efficient photoreduction of CO2.
Zhang, Na; Li, Jia-Jia; Li, Yang; Wang, Hang; Zhang, Jian-Yong; Liu, Yufeng; Fang, Yong-Zheng; Liu, Zhifu; Zhou, Min.
Affiliation
  • Zhang N; Shanghai Institute of Technology, Shanghai 201418, PRChina. Electronic address: nzhang@sit.edu.cn.
  • Li JJ; Shanghai Institute of Technology, Shanghai 201418, PRChina.
  • Li Y; Shanghai Institute of Technology, Shanghai 201418, PRChina.
  • Wang H; Shanghai Institute of Technology, Shanghai 201418, PRChina.
  • Zhang JY; Shanghai Institute of Technology, Shanghai 201418, PRChina.
  • Liu Y; Shanghai Institute of Technology, Shanghai 201418, PRChina.
  • Fang YZ; Shanghai Institute of Technology, Shanghai 201418, PRChina. Electronic address: fyz1003@sina.com.
  • Liu Z; Shanghai Institute of Technology, Shanghai 201418, PRChina.
  • Zhou M; Hefei National Laboratory for Physical Science at the Microscale, Department of Applied Chemistry, University of Science and Technology of China, Hefei, Anhui 230026, PR China. Electronic address: mzchem@ustc.edu.cn.
J Colloid Interface Sci ; 608(Pt 3): 3192-3203, 2022 Feb 15.
Article in En | MEDLINE | ID: mdl-34801238
CsPbBr3 quantum dots (CPB QDs) have great potential in photoreduction of CO2 to chemical fuels. However, the low charge transportation efficiency and chemical instability of CPB QDs presents a considerable challenge. Herein, we describe the electrostatic assemblies of negatively charged colloidal two dimensional (2D) Cu-Tetrakis(4-carboxyphenyl) porphyrins (Cu-TCPP) nanosheets and positively CPB QDs to construct the hydride heterojunction. The photogenerated electron migration from CPB QDs to Cu-TCPP nanosheets has been witnessed, providing the supply of long-lived electrons for the reduction of CO2 molecules adsorbed on Cu-TCPP matrix. As a direct result, The CPB@Cu-TCPP-x (x wt% of CPB QDs) photocatalysts exhibit significantly enhanced photocatalytic conversion of CO2, compared to the parent Cu-TCPP nanosheets or single CPB QDs. Especially, when with 20% CPB QDs, the heterostruture system achieves an evolution yield of 287.08 µmol g-1 in 4 h with highly CO selectivity (99%) under visible light irradiation, which is equivalent to a 3.87-fold improvement compared to the pristine CPB QDs. Meanwhile, the CH4 generation rate can be up to 3.25 µmol g-1. This optimized construction of heterostructure could provide a platform to funnel photoinduced electrons to the reaction center, which can both act as a crucial capture and the reaction actives of CO2.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: J Colloid Interface Sci Year: 2022 Document type: Article Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: J Colloid Interface Sci Year: 2022 Document type: Article Country of publication: United States