Charge redistribution in core-shell nanoparticles to promote oxygen reduction

被引:146
作者
Tang, Wenjie [1 ]
Henkelman, Graeme [1 ]
机构
[1] Univ Texas Austin, Dept Chem & Biochem, Austin, TX 78712 USA
关键词
adsorption; binding energy; catalysts; charge exchange; cobalt alloys; density functional theory; dissociation; Fermi level; molybdenum alloys; nanoparticles; palladium alloys; reaction kinetics theory; reduction (chemical); surface chemistry; ELASTIC BAND METHOD; ELECTRONIC-STRUCTURE; MONOLAYER ELECTROCATALYSTS; CATALYTIC-ACTIVITY; CARBON-MONOXIDE; TOTAL-ENERGY; METAL; REACTIVITY; TRANSITION; ADSORPTION;
D O I
10.1063/1.3134684
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
Bimetallic core-shell nanoparticles are a class of near-surface alloy catalyst for which there is a high degree of control over size and composition. A challenge for theory is to understand the relationship between their structure and catalytic function and provide guidelines to design new catalysts that take advantage of material properties arising at the nanoscale. In this work, we use density functional theory to calculate the energetics of oxygen dissociative adsorption on 1 nm Pd-shell nanoparticles with a series of core metals. The barrier for this reaction and the binding energy of atomic oxygen is found to correlate well with the d-band level of the surface electrons. Noble metal cores lower the barrier and increase the binding, reducing the activity of the Pd-shell as compared to Pt. Reactive core metals such as Co and Mo, on the other hand, lower the d-band of the shell with respect to the Fermi level, giving the Pd-shelled particles oxygen reduction kinetics similar to that of Pt. While both ligand and strain effects determine the d-band center of the Pd shell, a greater surface relaxation reduces the strain in nanoparticles as compared to single-crystal near-surface alloys. Charge redistribution between core and shell then becomes an important factor for lowering the d-band center of Pd-shelled particles and increasing their activity for the oxygen reduction reaction.
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页数:6
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共 47 条
[1]   Platinum monolayer fuel cell electrocatalysts [J].
Adzic, R. R. ;
Zhang, J. ;
Sasaki, K. ;
Vukmirovic, M. B. ;
Shao, M. ;
Wang, J. X. ;
Nilekar, A. U. ;
Mavrikakis, M. ;
Valerio, J. A. ;
Uribe, F. .
TOPICS IN CATALYSIS, 2007, 46 (3-4) :249-262
[2]   Ru-Pt core-shell nanoparticles for preferential oxidation of carbon monoxide in hydrogen [J].
Alayoglu, Selim ;
Nilekar, Anand U. ;
Mavrikakis, Manos ;
Eichhorn, Bryan .
NATURE MATERIALS, 2008, 7 (04) :333-338
[3]  
Bader R. F. W., 1994, ATOMS MOL QUANTUM TH
[4]   Design of a surface alloy catalyst for steam reforming [J].
Besenbacher, F ;
Chorkendorff, I ;
Clausen, BS ;
Hammer, B ;
Molenbroek, AM ;
Norskov, JK ;
Stensgaard, I .
SCIENCE, 1998, 279 (5358) :1913-1915
[5]   The Bronsted-Evans-Polanyi relation and the volcano curve in heterogeneous catalysis [J].
Bligaard, T ;
Norskov, JK ;
Dahl, S ;
Matthiesen, J ;
Christensen, CH ;
Sehested, J .
JOURNAL OF CATALYSIS, 2004, 224 (01) :206-217
[6]   PROJECTOR AUGMENTED-WAVE METHOD [J].
BLOCHL, PE .
PHYSICAL REVIEW B, 1994, 50 (24) :17953-17979
[7]   Acid and basic catalysis [J].
Bronsted, JN .
CHEMICAL REVIEWS, 1928, 5 (03) :231-338
[8]   Inertia and driving force of chemical reactions. [J].
Evans, MG ;
Polanyi, M .
TRANSACTIONS OF THE FARADAY SOCIETY, 1938, 34 (01) :0011-0023
[9]   Alloy catalysts designed from first principles [J].
Greeley, J ;
Mavrikakis, M .
NATURE MATERIALS, 2004, 3 (11) :810-815
[10]   Electronic structure and catalysis on metal surfaces [J].
Greeley, J ;
Norskov, JK ;
Mavrikakis, M .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 2002, 53 :319-348