Machine Learning, Density Functional Theory, and Experiments to Understand the Photocatalytic Reduction of CO2 on CuPt/TiO2

被引:3
作者
Sumaria, Vaidish [1 ,2 ]
Rawal, Takat B. [1 ]
Li, Young Feng [1 ]
Sommer, David [1 ]
Vikoren, Jake [1 ]
Bondi, Robert J. [1 ]
Rupp, Matthias [1 ,3 ]
Prasad, Amrit [1 ]
Prasad, Deeptanshu [1 ]
机构
[1] Quantum Generat Mat GenMat, Austin, TX 78704 USA
[2] Caminosoft Technol Inc, Simi Valley, CA 93065 USA
[3] Luxembourg Inst Sci & Technol LIST, L-4362 Esch Sur Alzette, Luxembourg
关键词
RUTILE; TIO2; DISSOCIATION; TRANSITION; ADSORPTION; CATALYSTS; CLUSTERS; METHANOL; SITES; PHOTOREDUCTION;
D O I
10.1021/acs.jpcc.4c02275
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The photoconversion of CO2 to hydrocarbons is a sustainable route for its transformation into value-added compounds, which is crucial to mitigating energy and climate crises. CuPt nanoparticles on TiO2 surfaces have been reported to show promising photoconversion efficiencies. For further progress, a mechanistic understanding of the catalytic properties of these CuPt/TiO2 systems is vital. Here, we employ ab initio calculations, machine learning, and photocatalysis experiments to understand the photocatalytic reduction of CO2 on CuPt/TiO2. We explore the configurational space of the CO2@CuPt/TiO2 systems and examine their structures and energetics. We find that the CuPt/TiO2 interface plays a key role in determining CO2 activation and, thus, the conversion to hydrocarbons. The interface stabilizes *CO and other intermediates containing CH groups, thus facilitating a higher activity and selectivity for methane. A bias-corrected machine-learning interatomic potential trained on density functional theory data enables the efficient exploration of the potential energy surfaces of numerous CO2@CuPt/TiO2 configurations using basin-hopping Monte Carlo simulations, greatly accelerating the study of these photocatalyst systems. Our simulations show that CO2 preferentially adsorbs at the interface, with a C atom bonded to a Pt site and one O atom occupying an O-vacancy site. The interface also promotes the formation of *CH and *CH2 intermediates. For confirmation, we synthesize CuPt/TiO2 samples with various compositions, analyze their morphologies and compositions using scanning electron microscopy and energy-dispersive X-ray spectroscopy, and measure their photocatalytic activity. Our computational and experimental findings qualitatively agree and highlight the importance of the interface design for the selective conversion of CO2 to hydrocarbons.
引用
收藏
页码:14247 / 14258
页数:12
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