A Deionized Water-Infilled Dual-Layer Insulator-Applied Brain-Implanted UWB Antenna for Wireless Biotelemetry Applications

We propose a novel double-layered insulator configuration for a human-brain-implanted impulse radio ultra-wideband (IR-UWB) antenna. The dimension of the antenna is 10.0\times 11.0\times0.954 mm 3 , including the dual-layer insulator. The insulator provides a dielectric loading effect of \varepsi...

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Veröffentlicht in:IEEE transactions on antennas and propagation 2022-08, Vol.70 (8), p.6469-6478
Hauptverfasser: Shin, Geonyeong, Kim, Wonkyo, Kim, Min Cheol, Kim, Jusung, Chung, Jae-Young, Nah, Junghyo, Yoon, Ick-Jae
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Sprache:eng
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Zusammenfassung:We propose a novel double-layered insulator configuration for a human-brain-implanted impulse radio ultra-wideband (IR-UWB) antenna. The dimension of the antenna is 10.0\times 11.0\times0.954 mm 3 , including the dual-layer insulator. The insulator provides a dielectric loading effect of \varepsilon _{r}~\approx ~50 (lossless) for obtaining an improved radiating power and the broadband-impedance-matching characteristic in brain tissues. The outer layer is made of biocompatible 3-D printing material, and the inner insulator is filled with deionized water with \varepsilon _{r}~\approx ~80 and loss tangent (tan \delta ) \approx ~0.25 at 4 GHz. A slotted UWB antenna with the proposed insulator is located between the emulated dura and CSF tissues inside the skull for brain signal detection. The design uses a multilayer phantom, mimicking the seven tissue layers of the brain. The impedance and radiation performance of the proposed antenna configuration are also discussed using the commercial high-precision human phantom model. The designed IR-UWB antenna shows a boresight radiation characteristic toward the top of the head with a proper high gain in the target frequency of 3-5 GHz. The computed expectations are verified experimentally. Furthermore, it is demonstrated that the UWB spectrum generated from a UWB radio-frequency (RF) transmitter can be transmitted stably using the proposed antenna as a transmitting antenna. In addition, the link budget of the system setup is analyzed. The improved gain characteristic of the antenna from the proposed dual-layer insulator can be utilized to retain the link margins while satisfying the UWB communication regulation and average specific absorption rate (SAR) limitation.
ISSN:0018-926X
1558-2221
DOI:10.1109/TAP.2022.3161289