Brillouin scattering study of the ferroelectric phase transition in tris-sarcosine calcium chloride
Author(s) -
Tomoyuki Hikita,
Paul Schnackenberg,
V. Hugo Schmidt
Publication year - 1985
Publication title -
physical review. b, condensed matter
Language(s) - English
Resource type - Journals
eISSN - 1095-3795
pISSN - 0163-1829
DOI - 10.1103/physrevb.31.299
Subject(s) - ferroelectricity , condensed matter physics , brillouin zone , phonon , brillouin scattering , physics , laser linewidth , phase transition , dielectric , materials science , nuclear magnetic resonance , optics , quantum mechanics , laser , optical fiber
Brillouin spectra from longitudinal phonons in ferroelectric tris-sarcosine calcium chloride propagating along [100], [010], and [001] have been measured as functions of temperature. Large anomalies were found in the Brillouin shift and hnewidth in the [100] and [001] phonons. These anomalies are interpreted as arising from the linear coupling of the polarization and the phonons. From the temperature where the linewidth is maximum, the relaxation time of the polarization fluctuations is estimated to be ~=3.1X10 ' /(T, — T) sec, where T, is the ferroelectric transition temperature. We also observed anomalies in Brillouin shift and linewidth of the [010] phonons which propagate along the ferroelectric b axis. These anomalies are interpreted as coming from electrostrictive coupling. The energy-relaxation time was estimated to be ~E — 2. 5&(10 ' /(T — T, ) sec in the paraelectric phase and ~E — 1.0& 10 /(T, — T) sec in the ferroelectric phase, by comparing our Brillouin results with those of the ultrasonic measurements.
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