Function-orchestrated CaO/BiVO4/rGO interfaces for efficient CO2 methanation via coupled charge separation and adsorptive activation

Abstract

The photocatalytic conversion of CO2 into methane (CH4) under mild conditions offers a promising route for renewable fuel production, yet it remains hindered by poor CO2 adsorption, fast electron–hole recombination, and limited redox efficiency. Herein, we report a ternary heterostructured photocatalyst composed of CaO, BiVO4, and reduced graphene oxide (rGO), designed to synergistically integrate CO2 activation, visible-light harvesting, and interfacial charge transfer. The CaO/BiVO4/rGO composite exhibited a remarkable CH4 evolution rate of 2.89 μmol g−1 h−1 under visible light (λ > 420 nm), outperforming BiVO4 and binary systems by a factor of 3.6. This enhancement is attributed to the basicity-driven CO2 chemisorption of CaO, the charge migration pathway enabled by rGO, and the visible-light absorption of BiVO4. Time-resolved photoluminescence and electrochemical impedance spectroscopy confirmed prolonged carrier lifetimes and reduced recombination losses. In situ FTIR and mass spectrometry analyses revealed that the photocatalytic process proceeded via a direct CO*–CHx intermediate pathway, excluding formate or methanol routes. The catalyst retained its structural integrity and activity over five cycles, demonstrating excellent photostability and recyclability. This work offers a robust design strategy for integrating multifunctional interfaces to unlock low-temperature photocatalytic CO2 methanation, with potential for application in solar-to-methane fuel systems.

Graphical abstract: Function-orchestrated CaO/BiVO4/rGO interfaces for efficient CO2 methanation via coupled charge separation and adsorptive activation

Supplementary files

Article information

Article type
Paper
Submitted
12 Jun 2025
Accepted
15 Aug 2025
First published
03 Sep 2025

J. Mater. Chem. A, 2025, Advance Article

Function-orchestrated CaO/BiVO4/rGO interfaces for efficient CO2 methanation via coupled charge separation and adsorptive activation

G. Kim, H. Jeong, J. Lee, H. Shin, Y. Kim, D. Jang, Y. Kim, S. J. Yoon, Y. Kim and M. Kang, J. Mater. Chem. A, 2025, Advance Article , DOI: 10.1039/D5TA04786B

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