Introduction: Fifth-generation (5G) wireless communication systems operating in the FR1 band have increased interest in studying bioelectromagnetic interactions under controlled exposure conditions. MicroElectrode Array (MEA)-based electrophysiology provides a suitable approach for real-time investigations of neuronal activity, although its integration with RF exposure systems remains technically challenging.Methods: This work presents the design, integration, and numerical characterization of a dual-band RF exposure system for real-time electrophysiological recordings using MEA devices. The system operates at 0.7 GHz and 3.5 GHz and is based on an open-ended coaxial radiator, termed Localized Radiating-End Coaxial line (LoREC). Full-wave COMSOL simulations were performed to evaluate field confinement, dosimetric quantities (SAR), and compatibility with the MEA acquisition setup.Results: The proposed exposure system achieved stable impedance matching and effective confinement of the electromagnetic field within the biological target region. SAR analysis showed frequency-dependent exposure patterns with reproducible and spatially consistent distributions across the active electrode area. Simulations also demonstrated negligible residual fields in proximity to the acquisition electronics, indicating limited electromagnetic interference with electrophysiological recordings.Discussion: The proposed exposure system provides a controlled and reproducible exposure architecture suitable for real-time RF exposure and MEA electrophysiological measurements under physiological conditions. The numerical results demonstrated stable near-field confinement within the MEA culture region, predictable SAR distributions, and negligible residual fields on the acquisition electronics across the investigated frequency range. The system is therefore suitable for investigating frequency-dependent bioelectromagnetic effects associated with 5G-FR1 technologies.

A dual-band RF exposure system for real-time electrophysiological recordings using microelectrode array device / Dolciotti, N., Pisano, C., Paffi, A., Cioni, M., Guerra, G., Zironi, I., Remondini, D., Aicardi, G., Liberti, M., Apollonio, F.. - In: FRONTIERS IN ANTENNAS AND PROPAGATION. - ISSN 2813-4680. - 4:(2026). [10.3389/fanpr.2026.1832099]

A dual-band RF exposure system for real-time electrophysiological recordings using microelectrode array device

Dolciotti, Noemi;Pisano, Carmen;Paffi, Alessandra;Liberti, Micaela;Apollonio, Francesca
2026

Abstract

Introduction: Fifth-generation (5G) wireless communication systems operating in the FR1 band have increased interest in studying bioelectromagnetic interactions under controlled exposure conditions. MicroElectrode Array (MEA)-based electrophysiology provides a suitable approach for real-time investigations of neuronal activity, although its integration with RF exposure systems remains technically challenging.Methods: This work presents the design, integration, and numerical characterization of a dual-band RF exposure system for real-time electrophysiological recordings using MEA devices. The system operates at 0.7 GHz and 3.5 GHz and is based on an open-ended coaxial radiator, termed Localized Radiating-End Coaxial line (LoREC). Full-wave COMSOL simulations were performed to evaluate field confinement, dosimetric quantities (SAR), and compatibility with the MEA acquisition setup.Results: The proposed exposure system achieved stable impedance matching and effective confinement of the electromagnetic field within the biological target region. SAR analysis showed frequency-dependent exposure patterns with reproducible and spatially consistent distributions across the active electrode area. Simulations also demonstrated negligible residual fields in proximity to the acquisition electronics, indicating limited electromagnetic interference with electrophysiological recordings.Discussion: The proposed exposure system provides a controlled and reproducible exposure architecture suitable for real-time RF exposure and MEA electrophysiological measurements under physiological conditions. The numerical results demonstrated stable near-field confinement within the MEA culture region, predictable SAR distributions, and negligible residual fields on the acquisition electronics across the investigated frequency range. The system is therefore suitable for investigating frequency-dependent bioelectromagnetic effects associated with 5G-FR1 technologies.
2026
5G frequencies, bioelectromagnetics, MEA - microelectrode array, numerical dosimetry, RF exposure system
01 Pubblicazione su rivista::01a Articolo in rivista
A dual-band RF exposure system for real-time electrophysiological recordings using microelectrode array device / Dolciotti, N., Pisano, C., Paffi, A., Cioni, M., Guerra, G., Zironi, I., Remondini, D., Aicardi, G., Liberti, M., Apollonio, F.. - In: FRONTIERS IN ANTENNAS AND PROPAGATION. - ISSN 2813-4680. - 4:(2026). [10.3389/fanpr.2026.1832099]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1777827
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