Inertial effects in anomalous dielectric relaxation
β Scribed by William T. Coffey; Yuri P. Kalmykov; Sergey V. Titov
- Publisher
- Elsevier Science
- Year
- 2004
- Tongue
- English
- Weight
- 467 KB
- Volume
- 114
- Category
- Article
- ISSN
- 0167-7322
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β¦ Synopsis
The linear dielectric response of an assembly of symmetric top dipole molecules (each of which is free to rotate in space) is evaluated in the context of fractional dynamics. The infinite hierarchy of differential-recurrence relations for the relaxation functions appropriate to the dielectric response is derived by using the underlying inertial fractional Fokker-Planck (fractional Klein-Kramers) equation. On solving this hierarchy in terms of continued fractions (as in normal rotational diffusion), the complex dynamic susceptibility is calculated for typical values of the model parameters for the particular case of linear molecules. It is shown that the model can reproduce nonexponential anomalous dielectric relaxation behaviour at low frequencies (vtF1, where t is the Debye relaxation time) and the inclusion of inertial effects ensures that optical transparency is regained at very high frequencies (in the far infrared region) so that Gordon's sum rule for integral dipolar absorption is satisfied.
π SIMILAR VOLUMES
A generalized Nee-ZwanzΓ―g equation is proposed to describe both low and high frequency dielectric relaxation. It is shown that the inertial effect is closely related to the non-markovΓ―an character of the dΓ―ferential equation governing the time evolution of the dipole-dipole autocorrelation function.
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