Singularities in radiative heat generation and interaction forces for two rotating nanoparticles caused by the anomalous Doppler effect
- Authors: Volokitin A.I.1, Dubas E.V.1
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Affiliations:
- Samara State Technical University
- Issue: Vol 105, No 11 (2017)
- Pages: 733-738
- Section: Miscellaneous
- URL: https://journals.rcsi.science/0021-3640/article/view/160371
- DOI: https://doi.org/10.1134/S0021364017110108
- ID: 160371
Cite item
Abstract
The quantum heat generation, interaction force, and friction torque for two rotating spherical nanoparticles with the radius R are calculated. In contrast to a static case where an upper bound in the radiative heat transfer between two particles exists, the quantum heat generation for two rotating particles diverges at distances between particles d < d0 = R(3/ε″(ω0))1/3 (where ε″(ω0) is the imaginary part of the dielectric function for the material of a particle at the resonance frequency ω0), when the rotation frequency coincides with poles in the excitation generation rate at Ω = 2ω0. These poles are due to the anomalous Doppler effect and the mutual polarization of particles and exist even in the presence of dissipation in particles. The anomalous heat generation is associated with the conversion of mechanical rotation energy into heat mediated by quantum friction. Similar singularities also exist for the interaction force and friction torque. The results can be of significant importance for biomedical applications.
About the authors
A. I. Volokitin
Samara State Technical University
Author for correspondence.
Email: alevolokitin@yandex.ru
Russian Federation, Samara, 443100
E. V. Dubas
Samara State Technical University
Email: alevolokitin@yandex.ru
Russian Federation, Samara, 443100
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