DOI: 10.1021/acscatal.6c02466 ISSN: 2155-5435

Dynamic Modulation of Metal–Support Coupling Drives Photothermal Reverse Water–Gas Shift Reaction on Cobalt–Carbon Interfaces

Siting Shao, Qiang Li, Lu Peng, Chengjun Sun, Hua Zhou, Jin Chen, Meng Zhang, Yimin A. Wu, Hongpeng Jia

Abstract

Photothermal catalysis has emerged as a promising route for CO2 conversion; however, whether light serves as a heat source or actively modulates catalytic active sites remains an open question. This work reports a defect-enhanced metal–carbon interaction strategy for tuning the electronic structure of cobalt species supported on carbon nanotubes (CNTs), enabling a highly selective reverse water–gas shift (RWGS) reaction to CO through light-induced electronic and adsorption modulation. Among catalysts with different cobalt nanoparticle sizes, 3Co/CNTs shows the highest photothermal catalytic performance, delivering a CO production rate of 299.3 mmol gcat–1 h–1 (10.0 mol gCo–1 h–1) and a CO selectivity of 98%, substantially outperforming both lower and higher Co loadings and showing a clear advantage over thermal catalysis at identical temperatures. Wavelength-dependent activity and a reduced apparent activation energy under irradiation confirm a non-thermal light effect. Spectroscopic analyses, including XPS, EPR, and in situ DRIFTs, together with CO2-TPD and H2-TPD measurements, reveal that light irradiation induces charge redistribution at the defect-cobalt interface and dynamically modulates CO2 and H2 adsorption. Density functional theory calculations further demonstrate that light-induced upshifting of the Co d-band center enhances adsorbate-metal interactions, providing an electronic basis for the observed photothermal enhancement. These findings establish dynamic modulation of metal-support electronic coupling and adsorption energetics as a key mechanism for photothermal CO2 reduction, offering a general strategy for designing light-responsive catalytic interfaces.

More from our Archive