High‐Entropy Alloys and Their Affinity with Hydrogen: From Cantor to Platinum Group Elements Alloys

Author:

Glazyrin Konstantin1ORCID,Spektor Kristina1ORCID,Bykov Maxim2ORCID,Dong Weiwei13,Yu Ji‐Hun Yu4,Yang Sangsun4,Lee Jai‐Sung Lee5,Divinski Sergiy V.6ORCID,Hanfland Michael7ORCID,Yusenko Kirill V.89ORCID

Affiliation:

1. Deutsches Elektronen‐Synchrotron (DESY) Notkestr. 85 22607 Hamburg Germany

2. Institute of Inorganic Chemistry University of Cologne 50939 Cologne Germany

3. Beijing Synchrotron Radiation Facility (BSRF), Institute of High Energy Physics Chinese Academy of Sciences Beijing 100049 China

4. Powder Materials Division Korea Institute of Materials Science 51508 Changwon South Korea

5. Department of Materials Science and Chemical Engineering Hanyang University Ansan 15588 South Korea

6. Institute of Materials Physics University of Münster 48149 Münster Germany

7. ESRF ‐ The European Synchrotron 71 Av. des Martyrs 38000 Grenoble France

8. Bundesanstalt für Materialforschung und ‐ prüfung (BAM) 12489 Berlin Germany

9. Institute of Geology, Mineralogy and Geophysics, Faculty of Geosciences Ruhr‐University Bochum Universitätsstrasse 150 44801 Bochum Germany

Abstract

AbstractProperties of high‐entropy alloys are currently in the spotlight due to their promising applications. One of the least investigated aspects is the affinity of these alloys to hydrogen, its diffusion, and reactions. In this study, high pressure is applied at ambient temperature and stress‐induced diffusion of hydrogen is investigated into the structure of high‐entropy alloys (HEA) including the famous Cantor alloy as well as less known, but nevertheless important platinum group (PGM) alloys. By applying X‐ray diffraction to samples loaded into diamond anvil cells, a comparative investigation of transition element incorporating HEA alloys in Ne and H2 pressure‐transmitting media is performed at ambient temperature. Even under stresses far exceeding conventional industrial processes, both Cantor and PGM alloys show exceptional resistance to hydride formation, on par with widely used industrial grade Cu–Be alloys. The observations inspire optimism for practical HEA applications in hydrogen‐relevant industry and technology (e.g., coatings, etc), particularly those related to transport and storage.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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