Deciphering the α relaxation and the anelastic-to-plastic transition in the deep glassy state
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
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Detail(s)
Original language | English |
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Article number | 234611 |
Journal / Publication | Science China Physics, Mechanics & Astronomy |
Volume | 68 |
Issue number | 3 |
Online published | 16 Dec 2024 |
Publication status | Published - Mar 2025 |
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Abstract
In contrast to their conventional crystalline counterparts, amorphous solids exhibit diverse dynamic relaxation mechanisms under external stimuli. The challenge to understanding their behavior lies in unifying microscopic dynamics, relaxation, and macroscopic deformation. This study establishes a potential link by quantifying the characteristic time of the anelastic-to-plastic transition through dynamic mechanical relaxation and stress relaxation tests across a wide temperature range in both the supercooled liquid and the glassy state. It is found that the stress relaxation time in the glassy solids follows an Arrhenius relationship, aligning with the main α relaxation time, and unveils a finding: α relaxation continues to govern deformation even below the glass transition, challenging previous assumptions of the role of secondary β relaxation. A hierarchically constrained atomic dynamics model rationalizes the temperature dependence of α relaxation and the transition from β to α relaxation, also providing evidence that the stretched exponent in the Kohlrausch-Williams-Watts equation can serve as an order parameter. This work highlights the role of α relaxation in the glassy state and contributes to elucidating the potential correlation between relaxation and deformation in amorphous materials. © Science China Press 2025.
Research Area(s)
- aging, dynamic relaxation, metallic glasses, nonelastic deformation
Citation Format(s)
Deciphering the α relaxation and the anelastic-to-plastic transition in the deep glassy state. / Hao, Qi; Xing, Guanghui; Pineda, Eloi et al.
In: Science China Physics, Mechanics & Astronomy, Vol. 68, No. 3, 234611, 03.2025.
In: Science China Physics, Mechanics & Astronomy, Vol. 68, No. 3, 234611, 03.2025.
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review