Thermal-activation model for freezing and the elastic robustness of bulk metallic glasses
Abstract
Despite significant atomic-scale heterogeneity, bulk metallic glasses well below their glass transition temperature exhibit a surprisingly robust elastic regime and a sharp elastic-to-plastic transition. Here it is shown that, when the number of available structural transformations scales exponentially with system size, a simple thermal-activation model is able to describe these features, where yield corresponds to a change from a barrier energy dominated to a barrier entropy dominated regime of shear transformation activity, allowing the system to macroscopically exit its frozen state. A yield criterion is then developed, which describes well the existing experimental data and motivates future dedicated deformation experiments to validate the model.
Additional Information
© 2011 American Physical Society. Received 16 June 2011; revised manuscript received 29 July 2011; published 21 December 2011. The authors acknowledge K. Clausen for institutional support, and C. Mudry for helpful discussion and critical reading of themanuscript. R.M. is grateful for financial support by the Alexander von Humboldt Foundation.Attached Files
Published - Derlet2011p16797Phys_Rev_B.pdf
Files
Derlet2011p16797Phys_Rev_B.pdf
Additional details
Identifiers
- Eprint ID
- 28983
- Resolver ID
- CaltechAUTHORS:20120126-111606682
Funding
- Alexander von Humboldt Foundation
Dates
- Created
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2012-01-26Created from EPrint's datestamp field
- Updated
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2021-11-09Created from EPrint's last_modified field