双金属片
催化作用
材料科学
水煤气变换反应
纳米颗粒
X射线光电子能谱
介孔材料
合金
选择性
介孔二氧化硅
格式化
化学工程
分析化学(期刊)
核化学
纳米技术
化学
金属
冶金
工程类
色谱法
生物化学
作者
Ákos Szamosvölgyi,Ádám Pitó,Anastasiia Efremova,Kornélia Baán,Bence Kutus,Mutyala Suresh,András Sápi,Imre Szenti,János Kiss,Tamás Kolonits,Zsolt Fogarassy,B. Pécz,Ákos Kukovecz,Zoltán Kónya
标识
DOI:10.1021/acsanm.4c00111
摘要
High Resolution Image Download MS PowerPoint Slide Different Co contents were used to tune bimetallic Pt–Co nanoparticles with a diameter of 8 nm, resulting in Pt:Co ratios of 3.54, 1.51, and 0.96. These nanoparticles were then applied to the MCF-17 mesoporous silica support. The synthesized materials were characterized with HR-TEM, HAADF-TEM, EDX, XRD, BET, ICP-MS, in situ DRIFTS, and quasi in situ XPS techniques. The catalysts were tested in a thermally induced reverse water–gas shift reaction (CO 2:H 2 = 1:4) at atmospheric pressure in the 200–700 °C temperature range. All bimetallic Pt–Co particles outperformed the pure Pt benchmark catalyst. The nanoparticles with a Pt:Co ratio of 1.51 exhibited 2.6 times higher activity and increased CO selectivity by 4% at 500 °C. Experiments proved that the electron accumulation and alloying effect on the Pt–Co particles are stronger with higher Co ratios. The production of CO followed the formate reaction pathway on all catalysts due to the face-centered-cubic structure, which is similar to the Pt benchmark. It is concluded that the enhanced properties of Co culminate at a Pt:Co ratio of 1.51 because decreasing the ratio to 0.96 results in lower activity despite having more Co atoms available for the electronic interaction, resulting in the lack of electron-rich Pt sites.
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