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Creep deformation in metallic glasses: A global approach with strain as an indicator within transition state theory

  • L. T. Zhang
  • , Y. J. Wang
  • , M. Nabahat
  • , E. Pineda
  • , Y. Yang
  • , J. M. Pelletier
  • , D. Crespo*
  • , J. C. Qiao*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Within the framework of transition state theory, the isothermal creep behavior of metallic glasses is elucidated through a unique global approach, where the topological state is exclusively linked to measured strain. Our methodology allows the computation of the average activation volume and activation energy of deformation units as a function of strain. Experimental data from four representative metallic glasses (La30Ce30Ni10Al10Co20, La65Ni15Al25, La56.16Ce14.04Ni19.8Al10, and Cu46Zr46Al8) reveal two distinct characteristics. Below the glass transition temperature, the mechanical response is primarily influenced by secondary relaxation processes and excess configuration entropy, with activation volume increasing with strain. Upon reaching the glass transition temperature, the activation volume becomes notably larger and strain-independent. Additionally, the activation energy exhibits an increase with strain, and deformation units of varying sizes are progressively activated, from smaller to larger units. The decoupling and competition among relaxation events are correlated with the increase in the activation volume of deformation units. These findings provide valuable insights into the dynamic behavior of metallic glasses and their mechanical response across different states. © 2024 Elsevier Ltd
Original languageEnglish
Article number103923
JournalInternational Journal of Plasticity
Volume174
Online published23 Feb 2024
DOIs
Publication statusPublished - Mar 2024

Funding

This work is supported by the NSFC (Grant No. 51971178 and 52271153 ), the Natural Science Basic Research Plan for Distinguished Young Scholars in Shaanxi Province (Grant No. 2021JC-12). YJW was financially supported by NSFC (Grant No. 12072344 ) and the Youth Innovation Promotion Association of the Chinese Academy of Sciences. YY acknowledges financial support from Research Grant Council (RGC), the Hong Kong government through the General Research Fund (GRF) with the grant numbers CityU11200719 and CityU11213118 . MN acknowledges support from the MCIN/AEI predoctoral FPI grant PRE-C-2018-0052 . EP and DC acknowledge financial support from Proyecto PID2020-112975GB-I00 de investigación financiado por MCIN/Agencia Estatal de Investigación (AEI) /10.13039/501100011033 and Generalitat de Catalunya AGAUR Grant No. 2017-SGR-42.

Research Keywords

  • Anelastic deformation
  • Creep
  • Free volume
  • Metallic glass
  • Plastic deformation

RGC Funding Information

  • RGC-funded

ESI Highly Cited Papers

  • Highly Cited Paper 2025

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