Bimetallic nickel-palladium nanoparticles with low Ni content and their enhanced ethanol oxidation performance: Using a pulsed laser as modification machinery
Author:
Publisher
Elsevier BV
Subject
Organic Chemistry,Energy Engineering and Power Technology,Fuel Technology,General Chemical Engineering
Reference52 articles.
1. Size-dependent hydrogen trapping in palladium nanoparticles;Liu;J Mater Chem A,2021
2. Polyhedral Au nanocrystals exclusively bound by 110 facets: the Rhombic dodecahedron;Jeong;J Am Chem Soc,2009
3. Synthesis and catalytic properties of bimetallic nanomaterials with various architectures;Liu;Nano Today,2012
4. Fabrication strategies and surface tuning of hierarchical gold nanostructures for electrochemical detection and removal of toxic pollutants;Theerthagiri;J Hazard Mater,2021
5. Reconciling of experimental and theoretical insights on the electroactive behavior of c/ni nanoparticles with AuPt alloys for hydrogen evolution efficiency and non-enzymatic sensor;Yu;Chem Eng J,2022
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