Absorption dispersion below boson peak frequency in oxide glasses studied by THz-time domain spectroscopy

Author:

Wada Osamu12ORCID,Ramachari Doddoji34ORCID,Yang Chan-Shan56ORCID,Uchino Takashi7ORCID,Pan Ci-Ling1ORCID

Affiliation:

1. Department of Physics, National Tsing Hua University 1 , Hsinchu 30013, Taiwan

2. Office for Academic and Industrial Innovation, Kobe University 2 , Kobe 657-8501, Japan

3. Institute of Research and Development, Duy Tan University 3 , Da Nang 550000, Vietnam

4. Faculty of Natural Sciences, Duy Tan University 4 , Da Nang 550000, Vietnam

5. Institute and Undergraduate Program of Electro-Optical Engineering, National Taiwan Normal University 5 , Taipei 11677, Taiwan

6. Micro/Nano Device Inspection and Research Center, National Taiwan Normal University 6 , Taipei 106, Taiwan

7. Graduate School of Science, Kobe University 7 , Kobe 657-8501, Japan

Abstract

The dispersion properties of the absorption coefficients [α(ν)] of different multi-component silicate oxide glasses have been studied in the frequency region below the boson peak by using THz-time-domain spectroscopy. The value of α(ν)/ν2 has been shown to exhibit a minimum level (R) at low frequency and subsequently a linear increase in the form of r(ν/νBP + E) with increasing frequency, where νBP is the boson peak frequency and R, r, and E are material-specific constants. It has also been found that R ∝ r and E is a constant common to most glasses. This α(ν)/ν2 behavior is ascribed to the dispersion property of the light-vibration coupling coefficient under the reasonable vibrational density of state function. The minimum (constant) and linear terms of the α(ν)/ν2 spectrum are originated from the physical/chemical disorder-induced charge fluctuations in the long-range scale (constant term) and short-range scale (linear term), respectively. The fluctuating charge (σ1) caused by uncorrelated, long-range disorders has primary significance for determining the sub-THz absorption dispersion properties, and its value has been determined for each glass material.

Funder

National Science and Technology Council

Publisher

AIP Publishing

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