In Situ Mapping of Phase Evolutions in Rapidly Heated Zr‐Based Bulk Metallic Glass with Oxygen Impurities

Author:

Tidefelt Mattias1ORCID,Löfstrand Julia2,Goetz Inga K.2,Donzel‐Gargand Olivier3,Ericsson Anders4,Han Xiaoliang5,Jönsson Petra E.2,Sahlberg Martin6,Kaban Ivan5,Fisk Martin14

Affiliation:

1. Department of Materials Science and Applied Mathematics Malmö University Nordenskiöldsgatan 1 Malmö SE‐21119 Sweden

2. Division of Materials Physics Department of Physics and Astronomy Uppsala University Box 530 Uppsala SE‐75121 Sweden

3. Division of Solar Cell Technology Angström Solar Centre Department of Materials Science and Engineering Uppsala University Uppsala 75121 Sweden

4. Division of Solid Mechanics Lund University P.O. Box 118 Lund SE‐221 00 Sweden

5. Leibniz Institute for Solid State and Materials Research Helmholtzstr. 20 01069 Dresden Germany

6. Department of Chemistry ‐ Angström Laboratory Uppsala University Box 538 Uppsala SE‐751 21 Sweden

Abstract

AbstractMetallic glasses exhibit unique mechanical properties. For metallic glass composites (MGC), composed of dispersed nanocrystalline phases in an amorphous matrix, these properties can be enhanced or deteriorated depending on the volume fraction and size distribution of the crystalline phases. Understanding the evolution of crystalline phases during devitrification of bulk metallic glasses upon heating is key to realizing the production of these composites. Here, results are presented from a combination of in situ small‐ and wide‐angle X‐ray scattering (SAXS and WAXS) measurements during heating of Zr‐based metallic glass samples at rates ranging from 102 to 104 Ks−1 with a time resolution of 4ms. By combining a detailed analysis of scattering experiments with numerical simulations, for the first time, it is shown how the amount of oxygen impurities in the samples influences the early stages of devitrification and changes the dominant nucleation mechanism from homogeneous to heterogeneous. During melting, the oxygen rich phase becomes the dominant crystalline phase whereas the main phases dissolve. The approach used in this study is well suited for investigation of rapid phase evolution during devitrification, which is important for the development of MGC.

Funder

Vetenskapsrådet

Stiftelsen för Strategisk Forskning

Energimyndigheten

Publisher

Wiley

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