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Investigation of Catalytic Activity Through Controlling Its Size and Composition of RhPt Bimetallic Nanoparticles
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HOME > J Korean Powder Metall Inst > Volume 18(6); 2011 > Article
RhPt 이종금속 나노입자의 크기 및 조성 제어를 통한 촉매 활성도에 관한 연구
박정영, 김선미
Investigation of Catalytic Activity Through Controlling Its Size and Composition of RhPt Bimetallic Nanoparticles
Jeong-Young Park, Sun-Mi Kim
Journal of Korean Powder Metallurgy Institute 2011;18(6):538-545
DOI: https://doi.org/10.4150/KPMI.2011.18.6.538
1한국과학기술원 EEWS 대학원
2한국과학기술원 EEWS 대학원
1Graduate School of EEWS (WCU) and NanoCentury KI, KAIST(Korea Advanced Institute of Science and Technology)
2Graduate School of EEWS (WCU) and NanoCentury KI, KAIST(Korea Advanced Institute of Science and Technology)
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This study shows that catalytic activity of bimetallic RhPt nanoparticle arrays under CO oxidation can be tuned by varying the size and composition of nanoparticles. The tuning of size of RhPt nanoparticles was achieved by changing concentration of rhodium and platinum precursors in one-step polyol synthesis. Two-dimensional RhPt bimetallic nanoparticle arrays in different size and composition were prepared through Langmuir-Blodgett thin film technique. CO oxidation was carried out on these two-dimensional nanoparticle arrays, revealing higher activity on the smaller nanoparticles compared to the bigger nanoparticles. X-ray photoelectron spectroscopy (XPS) results indicate the preferential surface segregation of Rh compared to Pt on the smaller nanoparticles, which is consistent with the thermodynamic analysis. Because the catalytic activity is associated with differences in the rates of O_2 dissociative adsorption between Pt and Rh, this paper suppose that the surface segregation of Rh on the smaller bimetallic nanoparticles is responsible for the higher catalytic activity in CO oxidation. This result suggests a control mechanism of catalytic activity via synthetic approaches of colloid nanoparticles, with possible application in rational design of nanocatalysts.

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