Issue 8, 2023

Spatial separation of redox centers for boosting cooperative photocatalytic hydrogen evolution with oxidation coupling of benzylamine over Pt@UiO-66-NH2@ZnIn2S4

Abstract

The construction of an overall photocatalytic redox system through the combination of photocatalytic hydrogen evolution (PHE) with the oxidative coupling of benzylamine into imines is highly desirable. Herein, a yolk–shell heterojunction Pt@UiO-66-NH2@ZnIn2S4 (Pt@UiO-66-NH2@ZIS) is synthesized and successfully utilized as a dual-functional photocatalyst for C–N coupling reaction of benzylamine and proton reduction half-reaction. In this dual-catalytic system, the hole collector ZnIn2S4 can trap and release the holes of UiO-66-NH2 to accelerate the C–N coupling reaction, while the electron collector Pt acts as an electron collector and an active site for the reduction of protons to H2. As expected, Pt@UiO-66-NH2@ZIS shows 4 and 16 times higher catalytic activities than that of individual ZnIn2S4 and UiO-66-NH2, respectively. Consequently, the optimal photocatalyst simultaneously promotes C–N coupling reaction (78%) and H2 evolution (850 μmol g−1 h−1). This unique design offers great prospects for other highly efficient synergistic dual-functional photocatalytic systems.

Graphical abstract: Spatial separation of redox centers for boosting cooperative photocatalytic hydrogen evolution with oxidation coupling of benzylamine over Pt@UiO-66-NH2@ZnIn2S4

Supplementary files

Article information

Article type
Paper
Submitted
18 Jan 2023
Accepted
08 Mar 2023
First published
08 Mar 2023

Catal. Sci. Technol., 2023,13, 2517-2528

Spatial separation of redox centers for boosting cooperative photocatalytic hydrogen evolution with oxidation coupling of benzylamine over Pt@UiO-66-NH2@ZnIn2S4

L. Wang, Y. Zhao, B. Zhang, G. Wu, J. Wu and H. Hou, Catal. Sci. Technol., 2023, 13, 2517 DOI: 10.1039/D3CY00089C

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