双金属片
催化作用
水煤气变换反应
合成气
材料科学
化学工程
甲醇
多相催化
水煤气
选择性
纳米技术
微型反应器
组分(热力学)
原位
活化能
一氧化碳
无机化学
过程(计算)
硫黄
分解水
作者
Wei Zhou,W. S. Wang,Ryo Ishibashi,J. M. Paterson,Jamie Southouse,Christophe Copéret
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2026-02-20
卷期号:16 (5): 4646-4652
标识
DOI:10.1021/acscatal.5c07945
摘要
The reverse water gas shift (RWGS) reaction is a promising route for CO2 utilization, providing a versatile syngas component for downstream processes such as methanol synthesis and Fischer–Tropsch chemistry. Low-temperature (<400 °C) RWGS offers reduced energy demand and enables process intensification, yet it remains highly challenging. Herein, we report a PtMo@SiO2 catalyst, synthesized via surface organometallic chemistry (SOMC), that achieves near-equilibrium CO2 conversion at 300 °C (GHSV = 60,000 mL/gcat/h, 1 bar). The catalyst exhibits CO formation rates over 2 orders of magnitude higher than Pt@SiO2 at 200 °C and ca. 30-fold higher at 300 °C. Spectroscopic studies, including CO/CO2–IR, in situ XAS, gas switching, and CO-TPD DRIFTS, reveal that partially reduced Mo(IV) interfacial sites on silica promote CO2 adsorption, while Mo(0) in PtMo alloys facilitates the activation of CO2 and CO desorption, jointly enhancing low-temperature RWGS performance.
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