Zn0.5Cd0.5Se quantum dot-integrated MOF-derived C/N–CeO2 photocatalyst for enhanced H2O2 production and O2 evolution reactions

Abstract

Herein, a rational strategy is presented to reduce the sluggish reaction kinetics and inefficient charge carrier separation of heterojunctions while enhancing their opto-electronic properties. A 1D–0D heterojunction, i.e., MOF-derived C/N–CeO2/Zn0.5Cd0.5Se quantum dot (CZCSe-1) hybrid material, was constructed to address the limitations associated with the H2O2 production and O2 evolution reactions through a facile reflux treatment. As anticipated, the optimised CZCSe-1 composite exhibited an impressive H2O2 production rate of 2820.43 μmol g−1 h−1, which was 1.7- and 2.1-fold higher than those of pristine C/N–CeO2 and ZCSe, respectively, and it exhibited stability up to four cycles. Additionally, an O2 evolution rate of 234.89 mmol g−1 h−1 was recorded for CZCSe-1, which showed superior activity over other materials previously reported in the literature. It was revealed that the outstanding photocatalytic performance was attributed to the effective anchoring of 0D ZCSe onto vacancy-rich C/N–CeO2 nanorods, displaying improved charge separation as obtained from the Pl, EIS, TPC and maximized redox capability analyses. The charge transfer dynamics in the CZCSe-1 composite via the S-scheme heterojunction was further investigated through free radical detection (ESR analysis) and work function study (VB-XPS). This work offers a new approach for optimizing economic metal oxide-based photocatalysts for H2O2 production and other applications.

Graphical abstract: Zn0.5Cd0.5Se quantum dot-integrated MOF-derived C/N–CeO2 photocatalyst for enhanced H2O2 production and O2 evolution reactions

Supplementary files

Article information

Article type
Paper
Submitted
20 Jan 2025
Accepted
02 Feb 2025
First published
19 Feb 2025
This article is Open Access
Creative Commons BY license

Nanoscale, 2025, Advance Article

Zn0.5Cd0.5Se quantum dot-integrated MOF-derived C/N–CeO2 photocatalyst for enhanced H2O2 production and O2 evolution reactions

J. Panda, J. Sahu and K. Parida, Nanoscale, 2025, Advance Article , DOI: 10.1039/D5NR00287G

This article is licensed under a Creative Commons Attribution 3.0 Unported Licence. You can use material from this article in other publications without requesting further permissions from the RSC, provided that the correct acknowledgement is given.

Read more about how to correctly acknowledge RSC content.

Social activity

Spotlight

Advertisements