Vibrational resonances in biological systems at microwave frequencies.

Robert K Adair
Author Information
  1. Robert K Adair: Department of Physics, Yale University, New Haven, Connecticut 06520-8121, USA. robert.adair@yale.edu

Abstract

Many biological systems can be expected to exhibit resonance behavior involving the mechanical vibration of system elements. The natural frequencies of such resonances will, generally, be in the microwave frequency range. Some of these systems will be coupled to the electromagnetic field by the charge distributions they carry, thus admitting the possibility that microwave exposures may generate physiological effects in man and other species. However, such microwave excitable resonances are expected to be strongly damped by interaction with their aqueous biological environment. Although those dissipation mechanisms have been studied, the limitations on energy transfers that follow from the limited coupling of these resonances to the electromagnetic field have not generally been considered. We show that this coupling must generally be very small and thus the absorbed energy is so strongly limited that such resonances cannot affect biology significantly even if the systems are much less strongly damped than expected from basic dissipation models.

References

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MeSH Term

Biophysical Phenomena
Biophysics
DNA
Electromagnetic Fields
Energy Transfer
Ions
Magnetics
Microtubules
Microwaves
Models, Statistical
Models, Theoretical

Chemicals

Ions
DNA

Word Cloud

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