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The more the better: on the formation of single-phase high entropy alloy nanoparticles as catalysts for the oxygen reduction reaction.
Pittkowski, Rebecca K; Clausen, Christian M; Chen, Qinyi; Stoian, Dragos; van Beek, Wouter; Bucher, Jan; Welten, Rahel L; Schlegel, Nicolas; Mathiesen, Jette K; Nielsen, Tobias M; Du, Jia; Rosenkranz, Asger W; Bøjesen, Espen D; Rossmeisl, Jan; Jensen, Kirsten M Ø; Arenz, Matthias.
Afiliação
  • Pittkowski RK; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
  • Clausen CM; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
  • Chen Q; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
  • Stoian D; Swiss Norwegian Beamline, European Synchrotron Radiation Facility (ESRF) Grenoble France.
  • van Beek W; Swiss Norwegian Beamline, European Synchrotron Radiation Facility (ESRF) Grenoble France.
  • Bucher J; Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern Bern Switzerland matthias.arenz@unibe.ch.
  • Welten RL; Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern Bern Switzerland matthias.arenz@unibe.ch.
  • Schlegel N; Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern Bern Switzerland matthias.arenz@unibe.ch.
  • Mathiesen JK; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
  • Nielsen TM; Department of Physics, Technical University of Denmark Kgs. Lyngby Denmark.
  • Du J; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
  • Rosenkranz AW; Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern Bern Switzerland matthias.arenz@unibe.ch.
  • Bøjesen ED; Aarhus University, Interdisciplinary Nanoscience Center Aarhus Denmark.
  • Rossmeisl J; Aarhus University, Interdisciplinary Nanoscience Center Aarhus Denmark.
  • Jensen KMØ; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
  • Arenz M; Center for High Entropy Alloy Catalysis (CHEAC), Department of Chemistry, University of Copenhagen Copenhagen Denmark Rebecca.pittkowski@chem.ku.dk kirsten@chem.ku.dk.
EES Catal ; 1(6): 950-960, 2023 Nov 02.
Article em En | MEDLINE | ID: mdl-38013789
ABSTRACT
High entropy alloys (HEAs) are an important new material class with significant application potential in catalysis and electrocatalysis. The entropy-driven formation of HEA materials requires high temperatures and controlled cooling rates. However, catalysts in general also require highly dispersed materials, i.e., nanoparticles. Only then a favorable utilization of the expensive raw materials can be achieved. Several recently reported HEA nanoparticle synthesis strategies, therefore, avoid the high-temperature regime to prevent particle growth. In our work, we investigate a system of five noble metal single-source precursors with superior catalytic activity for the oxygen reduction reaction. Combining in situ X-ray powder diffraction with multi-edge X-ray absorption spectroscopy, we address the fundamental question of how single-phase HEA nanoparticles can form at low temperatures. It is demonstrated that the formation of HEA nanoparticles is governed by stochastic principles and the inhibition of precursor mobility during the formation process favors the formation of a single phase. The proposed formation principle is supported by simulations of the nanoparticle formation in a randomized process, rationalizing the experimentally found differences between two-element and multi-element metal precursor mixtures.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article