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February 2, 2012Proceedings of the National Academy of Sciences168 citationsOpen Access

On relaxations and aging of various glasses

AAAriel AmirYOYuval OregYIY. Imry

Key Points

  • This research aims to identify a general mechanism underlying slow relaxations and aging across various materials.
  • Proposed a general mechanism for slow relaxations and logarithmic aging dependence on waiting time.
  • Compared predictions to experimental data from various materials including granular metals and disordered insulators.
  • Analyzed low temperature dielectric properties of glasses.
  • Demonstrated that the relaxation behavior follows logarithmic patterns as predicted.
  • Observed that aging strongly depends on the waiting time during stretching and recovery processes.
  • Validated the proposed model against experimental data across a range of physical systems.

Abstract

Slow relaxation occurs in many physical and biological systems. "Creep" is an example from everyday life. When stretching a rubber band, for example, the recovery to its equilibrium length is not, as one might think, exponential: The relaxation is slow, in many cases logarithmic, and can still be observed after many hours. The form of the relaxation also depends on the duration of the stretching, the "waiting time." This ubiquitous phenomenon is called aging, and is abundant both in natural and technological applications. Here, we suggest a general mechanism for slow relaxations and aging, which predicts logarithmic relaxations, and a particular aging dependence on the waiting time. We demonstrate the generality of the approach by comparing our predictions to experimental data on a diverse range of physical phenomena, from conductance in granular metals to disordered insulators and dirty semiconductors, to the low temperature dielectric properties of glasses.

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Cite This Study

Amir et al. (2012) studied this question.

synapsesocial.com/papers/69dc36e08bac30e30e9f55c8https://doi.org/10.1073/pnas.1120147109
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