open access publication

Article, 2023

Formation of intermetallic PdIn nanoparticles: influence of surfactants on nanoparticle atomic structure

Nanoscale Advances, ISSN 2516-0230, Volume 5, 24, Pages 6913-6924, 10.1039/d3na00582h

Contributors

Wang, Baiyu [1] Mathiesen, Jette Katja 0000-0001-6252-4131 [2] Kirsch, Andrea 0000-0003-2602-7415 [1] Schlegel, Nicolas 0000-0001-7720-3146 [3] Anker, Andy Sode 0000-0002-7403-6642 [1] Johansen, Frederik Lizak 0000-0002-8049-8624 [1] Kjær, Emil Thyge Skanning 0000-0002-0298-6016 [1] Aalling-Frederiksen, Olivia 0000-0003-1462-7173 [1] Nielsen, Tobias M [1] Thomsen, Maria Storm 0000-0001-9384-5827 [1] Jakobsen, Rasmus Kirial 0000-0002-0483-6521 [1] Arenz, Matthias 0000-0001-9765-4315 [3] Jensen, Kirsten Marie Ørnsbjerg 0000-0003-0291-217X (Corresponding author) [1]

Affiliations

  1. [1] University of Copenhagen
  2. [NORA names: KU University of Copenhagen; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  5. [3] University of Bern
  6. [NORA names: Switzerland; Europe, Non-EU; OECD]

Abstract

Bimetallic nanoparticles have been extensively studied as electrocatalysts due to their superior catalytic activity and selectivity compared to their monometallic counterparts. The properties of bimetallic materials depend on the ordering of the metals in the structure, and to tailor-make materials for specific applications, it is important to be able to control the atomic structure of the materials during synthesis. Here, we study the formation of bimetallic palladium indium nanoparticles to understand how the synthesis parameters and additives used influence the atomic structure of the obtained product. Specifically, we investigate a colloidal synthesis, where oleylamine was used as the main solvent while the effect of two surfactants, oleic acid (OA) and trioctylphosphine (TOP) was studied. We found that without TOP included in the synthesis, a Pd-rich intermetallic phase with the Pd3In structure initially formed, which transformed into large NPs of the CsCl-structured PdIn phase. When TOP was included, the syntheses yielded both In2O3 and Pd3In. In situ X-ray total scattering with Pair Distribution Function analysis was used to study the formation process of PdIn bimetallic NPs. Our results highlight how seemingly subtle changes to material synthesis methods can have a large influence on the product atomic structure.

Keywords

NPs, PdIn, X-ray, X-ray total scattering, acid, activity, addition, analysis, applications, atomic structure, bimetallic NPs, bimetallic materials, bimetallic nanoparticles, catalytic activity, changes, colloidal synthesis, counterparts, distribution function analysis, effect, electrocatalysts, formation, formation process, functional analysis, indium nanoparticles, influence, influence of surfactants, intermetallic phases, material synthesis methods, materials, metal, method, monometallic counterparts, nanoparticles, oleic acid, oleylamine, order, pair distribution function analysis, pairs, parameters, phase, process, production, properties, results, scattering, selection, solvent, structure, surfactants, synthesis, synthesis method, synthesis parameters, total scattering, trioctylphosphine

Funders

  • Danish Agency for Science and Higher Education
  • Danish National Research Foundation
  • Helmholtz Association of German Research Centres
  • Swiss National Science Foundation
  • The Velux Foundations

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