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Temperature dependence of spatial nanoheterogeneities of shear modulus in supercooled glycerol. | LitMetric

AI Article Synopsis

  • The boson peak in the terahertz vibrational spectrum reveals insights into the nano-heterogeneities of the shear modulus in glass formers, especially when analyzing supercooled liquids.
  • Through an examination of light scattering spectra for supercooled glycerol within a temperature range of 180-330 K, researchers determined how the boson peak's frequency correlates with fluctuations in the shear modulus.
  • Findings indicate that structural relaxation predominantly influences the temperature dependence of shear modulus fluctuations, showing a rapid decrease at temperatures above ~250 K and a significant relationship with the Landau-Placzek ratio at temperatures below the Arrhenius temperature (TA = 350 K).

Article Abstract

The boson peak in the terahertz vibrational spectrum carries information about nano-heterogeneities in the shear modulus in glass formers. Its evolution upon heating or cooling in a supercooled liquid state may shed light on the temperature dependence of heterogeneities. For this purpose, an analysis of the light scattering spectra of supercooled glycerol in the spectral range of the boson peak and fast relaxation was carried out and the parameters of the boson peak in the temperature range 180-330 K were determined. The temperature dependent frequency of the boson peak was then expressed in terms of the mean-square amplitude of the shear modulus fluctuations. This was done using the heterogeneous elasticity theory in combination with the perturbation theory on small fluctuations and Ioffe-Regel criterion for transverse vibrations in glass formers. The contribution of structural relaxation effects to phonon damping becomes significant with increasing temperature. It is shown here that structural relaxation largely determines the temperature dependence of the mean-square fluctuations of the shear modulus at high temperatures. By solving the inverse problem, the temperature dependence of shear modulus fluctuations was obtained. It shows a rapid decrease above ∼250 K with a linear extrapolation going to zero at the so-called Arrhenius temperature TA = 350 K. Comparison with literature data on the Landau-Placzek ratio shows that they have a similar temperature dependence at T < TA, which is explained by the appearance of nanometer scale spatial heterogeneities below TA. This is confirmed by the temperature dependence of the amplitude of the boson peak.

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Source
http://dx.doi.org/10.1063/5.0215095DOI Listing

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