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April 12, 2026The Journal of the Acoustical Society of America0 citations

Frequency-domain multiphysics modeling of photoacoustic responses in strongly scattering multilayered human skin

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SKSangmo Kang

Key Points

  • To develop a semi-analytical framework for modeling photoacoustic responses in multilayered human skin using frequency-domain analysis.
  • Developed a frequency-domain semi-analytical framework for photoacoustic wave modeling.
  • Incorporated photon diffusion with heat conduction and thermoelastic wave generation.
  • Ensured photon-flux continuity at refractive-index discontinuities.
  • Validated the model against benchmark reference results in multilayered media.
  • Applied the framework to a realistic nine-layer skin model for analysis.
  • Achieved excellent agreement in pressure amplitude and phase with benchmark results.
  • Enabled depth-resolved analysis of photon fluence and thermal behavior.
  • Provided insights into acoustic pressure under physiologically relevant conditions.

Abstract

This work presents a frequency-domain semi-analytical framework for modeling photoacoustic wave generation and propagation in strongly scattering multilayered human skin. The approach extends previous semi-analytical methods for non-scattering multilayered media by incorporating photon diffusion and its coupling with heat conduction and thermoelastic wave generation within a unified Fourier-domain formulation, enabling accurate characterization of frequency-dependent acoustic responses. A key contribution is the physically consistent treatment of photon transport at refractive-index discontinuities, resolving inconsistencies that can arise when Robin-type conditions are applied at internal interfaces in some diffusion-based layered models. This ensures photon-flux continuity and optical energy conservation across anatomical interfaces, which is critical for accurate predictions in scattering-dominant media. The formulation is validated against benchmark reference results, demonstrating excellent agreement in pressure amplitude and phase. Application to a realistic nine-layer anatomical skin model enables depth-resolved analysis of photon fluence, thermal behavior, and acoustic pressure under physiologically relevant conditions. The proposed framework provides an energy-conserving and generalizable foundation for quantitative photoacoustic analysis in layered biological media, offering improved physical fidelity for biomedical ultrasound and photoacoustic imaging applications.

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Cite This Study

Sangmo Kang (2026) studied this question.

synapsesocial.com/papers/69db38534fe01fead37c689bhttps://doi.org/10.1121/10.0043328
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