Analysis of a Hybrid Intrabody Communications Scheme for Wireless Cortical Implants

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Teshome, Assefa ORCID logoORCID: https://orcid.org/0000-0002-4320-1131 and Lai, Tze Huel ORCID logoORCID: https://orcid.org/0000-0003-3459-7709 (2025) Analysis of a Hybrid Intrabody Communications Scheme for Wireless Cortical Implants. Electronics Switzerland, 14 (22). ISSN 2079-9292

Abstract

Implantable technologies targeting the cerebral cortex and deeper brain structures are increasingly utilised in human–machine interfacing, advanced neuroprosthetics, and clinical interventions for neurological conditions. These systems require highly efficient and low-power methods for exchanging information between the implant and external electronics. Traditional approaches often rely on inductively coupled data transfer (ic-DT), where the same coils used for wireless power are modulated for communication. Other designs use high-frequency antenna-based radio systems, typically operating in the 401–406 MHz MedRadio band or the 2.4 GHz ISM band. A promising alternative is intrabody communication (IBC), which leverages the bioelectrical characteristics of body tissue to enable signal propagation. This work presents a theoretical investigation into two schemes—inductive coupling and galvanically coupled IBC (gc-IBC)—as applied to cortical data links, considering frequencies from 1 to 10 MHz and implant depths of up to 7 cm. We propose a hybrid solution where gc-IBC supports data transmission and inductive coupling facilitates wireless power delivery. Our findings indicate that gc-IBC can accommodate wider bandwidths than ic-DT and offers significantly reduced path loss, approximately 20 dB lower than those of conventional RF-based antenna systems.

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Item type Article
URI https://vuir.vu.edu.au/id/eprint/50203
DOI 10.3390/electronics14224410
Official URL https://doi.org/10.3390/electronics14224410
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