Related Experiment Video
Updated: Jan 19, 2026

Synthesis of Bimetallic Pt/Sn-based Nanoparticles in Ionic Liquids
Published on: August 23, 2018
Ensemble Effect in Bimetallic Electrocatalysts for CO2 Reduction
Yuxuan Wang, Liang Cao, Nicole J Libretto1
1Davidson School of Chemical Engineering , Purdue University , West Lafayette 47907 , Indiana , United States.
Abstract:
Alloying is an important strategy for the design of catalytic materials beyond pure metals. The conventional alloy catalysts however lack precise control over the local atomic structures of active sites. Here we report on an investigation of the active-site ensemble effect in bimetallic Pd-Au electrocatalysts for CO2 reduction. A series of Pd@Au electrocatalysts are synthesized by decorating Au nanoparticles with Pd of controlled doses, giving rise to bimetallic surfaces containing Pd ensembles of various sizes. Their catalytic activity for electroreduction of CO2 to CO exhibits a nonlinear behavior in dependence of the Pd content, which is attributed to the variation of Pd ensemble size and the corresponding tuning of adsorption properties. Density functional theory calculations reveal that the Pd@Au electrocatalysts with atomically dispersed Pd sites possess lower energy barriers for activation of CO2 than pure Au and are also less poisoned by strongly binding *CO intermediates than pure Pd, with an intermediate ensemble size of active sites, such as Pd dimers, giving rise to the balance between these two rate-limiting factors and achieving the highest activity for CO2 reduction.
Related Concept Videos
07:14Synthesis of Bimetallic Pt/Sn-based Nanoparticles in Ionic Liquids
Oxidation-Reduction Reactions
07:30Ensemble Force Spectroscopy by Shear Forces
08:49Incorporating Target Protein Structure Flexibility and Dynamics in Computational Drug Discovery Using Ensemble-Based Docking Analysis
Block Diagram Reduction
The first step in this process is the identification and relocation of a branch point. A branch point, where a...
Oxymercuration-Reduction of Alkenes

