On the shear modulus and thermal effects during structural relaxation of a model metallic glass: Correlation and thermal decoupling

Zhou, Hongbo; Khonik, Vitaly; Wilde, Gerhard

Research article (journal) | Peer reviewed

Abstract

Pd40Ni40P20 (at.%) samples with different enthalpy states were fabricated through high-pressure torsion or sub-Tg annealing of the as-cast material. Subsequently, the underlying structural relaxation was studied by in-situ shear modulus measurements and modulated differential scanning calorimetry. The results show that high-pressure torsion leads to shear modulus softening and an increase of the nonreversible exothermic enthalpy, indicating a significant structural rejuvenation, while sub-Tg annealing causes shear modulus hardening and a decrease of the nonreversible exothermic enthalpy. The reversible endothermic effect which can reflect the fractional change of supercooled liquid with temperature was found to be almost identical for all samples, and independent of deformation or thermal history. The total heat flow can be well correlated with the shear modulus within the framework of interstitialcy theory. Furthermore, we demonstrate that the structural relaxation below Tg decouples into internal stress relaxation and β-relaxation. In addition, this work indicates that the processes of α-relaxation and β-relaxation in the metallic glass are of similar structural origin but occur on different spatial scales.

Details about the publication

JournalJournal of Materials Science and Technology
Volume103
Page range144-151
StatusPublished
Release year2022 (20/03/2022)
Language in which the publication is writtenEnglish
DOI10.1016/j.jmst.2021.05.081
Link to the full texthttps://api.elsevier.com/content/abstract/scopus_id/85114943703
KeywordsThermal properties; Interstitialcy theory; Relaxation; In-situ shear modulus; Bulk metallic glass

Authors from the University of Münster

Wilde, Gerhard
Professorship of Materials Physics (Prof. Wilde)
Zhou, Hongbo
Professorship of Materials Physics (Prof. Wilde)