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Photothermal Dry Reforming of Methane Over Supported Bimetal Dual-Atom Pairs
Bin Liu1, Yuan Wang1, Xiaonan Hu1
1Innovation Institute of Carbon Neutrality, International Joint Laboratory of Catalytic Chemistry, State Key Laboratory of Materials for Advanced Nuclear Energy, Department of Chemistry, College of Sciences, Shanghai University, Shanghai 200444, China.
Abstract:
Dry reforming of methane (DRM, CH4 + CO2 → 2H2 + 2CO) offers a promising route for converting two greenhouse gases into valuable syngas. However, conventional thermal catalysis requires extreme temperatures (>800 °C) to overcome high energy barrier, leading to significant energy consumption and catalyst deactivation. Herein, we develop a Pt1-Ni1/CeO2 photothermal catalyst with atomically dispersed Pt1-Ni1 paired active sites for DRM under mild conditions. At 450 °C under light illumination, the catalyst exhibits high H2 and CO production rates of 4.62 and 4.65 mmol gcatalyst-1 min-1, respectively, with a H2/CO ratio close to unity (0.99). Mechanistic investigations reveal that light irradiation induces photogeneration of electrons and holes in CeO2, which directionally transfer to atomic Ni and Pt sites, respectively, inducing asymmetric charge polarization that promotes the activation of reactants. Steady-state isotope transient kinetic analysis combined with diffuse reflectance infrared Fourier transform spectroscopy (SSITKA-DRIFTS) measurement identifies the critical *CHxO intermediate formed via *CHx + *O → *CHxO, a key step that suppresses deep dehydrogenation and carbon deposition. This work elucidates the regulation of parallel reactions over asymmetric dual-atom pairs in the transformation of CH4 + CO2 via photothermal synergy, paving the way for the targeted conversion of C1 molecules under mild conditions.
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