An Analytical Framework for Frequency-Dependent Electromagnetic Power Absorption in Biological Tissues

Fuente: arXiv
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Hauptverfasser: Wang, Hongyun, Foley, Shannon E., Zhou, Hong
Format: Preprint
Veröffentlicht: 2026
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author Wang, Hongyun
Foley, Shannon E.
Zhou, Hong
author_facet Wang, Hongyun
Foley, Shannon E.
Zhou, Hong
contents As exposure to electromagnetic waves becomes increasingly widespread, it is important to quantify how incident fields couple into biological tissue and where absorbed energy is deposited. This work presents an analytical, physics based framework derived from Maxwell's equations to model the propagation of a normally incident electromagnetic plane wave within homogeneous, lossy dielectric biological tissues. Closed-form expressions for the electric and magnetic fields are derived, enabling the determination of frequency-dependent power reflectance and transmittance at the air-tissue interface, as well as the power absorption coefficient and penetration depth within the medium. Using complex relative permittivity data from the literature, we examine six tissue types across a broad frequency range (1 MHz to 100 GHz). The results demonstrate that higher water content significantly increases dielectric loss and reduces penetration depth. Conversely, low-water tissues (e.g., non-infiltrated fat) exhibit lower attenuation and deeper penetration. Frequency is shown to be a dominant driver of this behavior, with higher frequencies shifting the power budget from reflection-limited coupling toward highly superficial absorption. These findings provide a foundation basis for exposure assessments and the design of emerging electromagnetic technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2604_06225
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle An Analytical Framework for Frequency-Dependent Electromagnetic Power Absorption in Biological Tissues
Wang, Hongyun
Foley, Shannon E.
Zhou, Hong
Biological Physics
Optics
78A25, 35Q61, 78A48
As exposure to electromagnetic waves becomes increasingly widespread, it is important to quantify how incident fields couple into biological tissue and where absorbed energy is deposited. This work presents an analytical, physics based framework derived from Maxwell's equations to model the propagation of a normally incident electromagnetic plane wave within homogeneous, lossy dielectric biological tissues. Closed-form expressions for the electric and magnetic fields are derived, enabling the determination of frequency-dependent power reflectance and transmittance at the air-tissue interface, as well as the power absorption coefficient and penetration depth within the medium. Using complex relative permittivity data from the literature, we examine six tissue types across a broad frequency range (1 MHz to 100 GHz). The results demonstrate that higher water content significantly increases dielectric loss and reduces penetration depth. Conversely, low-water tissues (e.g., non-infiltrated fat) exhibit lower attenuation and deeper penetration. Frequency is shown to be a dominant driver of this behavior, with higher frequencies shifting the power budget from reflection-limited coupling toward highly superficial absorption. These findings provide a foundation basis for exposure assessments and the design of emerging electromagnetic technologies.
title An Analytical Framework for Frequency-Dependent Electromagnetic Power Absorption in Biological Tissues
topic Biological Physics
Optics
78A25, 35Q61, 78A48
url https://arxiv.org/abs/2604.06225