The aim of this study was to investigate quantitatively local sub-cellular power deposition at frequencies upcoming for wireless power transfer (WPT) and millimeter-wave (mmWave) technologies. The study was performed on a realistic two-dimensional keratinocyte cell model, designed based on electron microscopy images and experimental data on surface area fraction of keratinocyte to explicitly represent nucleus, mitochondria, endoplasmic reticulum, Golgi apparatus and vesicles. The average power loss density (PLDavg) and electric field (Eavg) were computed by solving Laplace's equation under quasi-static approximation using the finite element method. The numerical results for the spherical cell model were validated with corresponding analytical solutions. The results showed that Eavg and PLDavg inside the organelles increased with frequency. Nearly, 51.8% and 98.9% of the incident field on the cell penetrated inside the organelles at 6.78 MHz and 60 GHz, respectively. The PLDavg within the organelles in average was 35.7% (6.78 MHz) and 1.95% (60 GHz) lower than in the cytoplasm. The Eavg induced inside nuclear pores (Np) exceeded the incident field by 5 times and 1.1 times at 6.78 MHz and 60 GHz, respectively. The corresponding PLDavg within Np was 32.7 times (6.78 MHz) and 1.2 times (60 GHz) higher than that of the cytoplasm. The enhancement of PLDavg in Np suggests that the intracellular traffic is locally exposed to higher exposure levels compared to the background PLDavg in cytosol.

Local dosimetry at cellular and subcellular level in HF and millimeter-wave bands / Haider, Z., Nikolayev, D., Le Drean, Y., De Angelis, A., Liberti, M., Sauleau, R., Zhadobov, M.. - In: IEEE JOURNAL OF MICROWAVES. - ISSN 2692-8388. - 1:4(2021), pp. 1003-1014. [10.1109/jmw.2021.3111965]

Local dosimetry at cellular and subcellular level in HF and millimeter-wave bands

DE ANGELIS, ANNALISA;LIBERTI, MICAELA;
2021

Abstract

The aim of this study was to investigate quantitatively local sub-cellular power deposition at frequencies upcoming for wireless power transfer (WPT) and millimeter-wave (mmWave) technologies. The study was performed on a realistic two-dimensional keratinocyte cell model, designed based on electron microscopy images and experimental data on surface area fraction of keratinocyte to explicitly represent nucleus, mitochondria, endoplasmic reticulum, Golgi apparatus and vesicles. The average power loss density (PLDavg) and electric field (Eavg) were computed by solving Laplace's equation under quasi-static approximation using the finite element method. The numerical results for the spherical cell model were validated with corresponding analytical solutions. The results showed that Eavg and PLDavg inside the organelles increased with frequency. Nearly, 51.8% and 98.9% of the incident field on the cell penetrated inside the organelles at 6.78 MHz and 60 GHz, respectively. The PLDavg within the organelles in average was 35.7% (6.78 MHz) and 1.95% (60 GHz) lower than in the cytoplasm. The Eavg induced inside nuclear pores (Np) exceeded the incident field by 5 times and 1.1 times at 6.78 MHz and 60 GHz, respectively. The corresponding PLDavg within Np was 32.7 times (6.78 MHz) and 1.2 times (60 GHz) higher than that of the cytoplasm. The enhancement of PLDavg in Np suggests that the intracellular traffic is locally exposed to higher exposure levels compared to the background PLDavg in cytosol.
2021
dosimetry; finite element method; human skin; millimeter waves
01 Pubblicazione su rivista::01a Articolo in rivista
Local dosimetry at cellular and subcellular level in HF and millimeter-wave bands / Haider, Z., Nikolayev, D., Le Drean, Y., De Angelis, A., Liberti, M., Sauleau, R., Zhadobov, M.. - In: IEEE JOURNAL OF MICROWAVES. - ISSN 2692-8388. - 1:4(2021), pp. 1003-1014. [10.1109/jmw.2021.3111965]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1772187
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