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  4. An Ultrasonically Powered System Using an AlN PMUT Receiver for Delivering Instantaneous mW-Range DC Power to Biomedical Implants
 
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September 3, 2023
Conference Paper
Title

An Ultrasonically Powered System Using an AlN PMUT Receiver for Delivering Instantaneous mW-Range DC Power to Biomedical Implants

Abstract
Aluminum Nitride (AlN) Piezoelectric Micromachined Ultrasonic Transducers (PMUTs) are gaining interest for biomedical implant power due to biocompatibility and low-temperature processing. However, due to the low piezoelectric coefficient of AlN PMUTs, storage capacitors are often used to accumulate ultrasonic power transferred over an extended time. The accumulated energy is then used to power a DC load, which leads to a long start-up time, and insufficient duty cycle for some applications. We present an ultrasonically powered system for biomedical implants capable of delivering mW-range instantaneous power to DC loads, without pre-storing it. The system features a 25 mm2 AlN PMUT, an inductive matching network, and an application-specific power management integrated circuit(ASIC). For an acoustic intensity of 360 mW/cm2 at the surface of the PMUT, an open-circuit voltage of 1.11 V and an aperture efficiency of 30.5 % are measured. Furthermore, by connecting a series-matching inductor to the PMUT, the highest-reported power delivered to the load (PDL) of 6.4 mW is measured over an optimal load of 7.6 Ω. Finally, together with the ASIC and at the intensity of 108 mW/cm2, our system delivers 1.04 mW DC power to a 3.3 kΩ load, which is over two orders of magnitude higher than the previously reported average DC power for AlN PMUTs.
Author(s)
Rashidi, Amin
Saccher, Marta
Karuthedath, Cyril Baby
Sebastian, Abhilash Thanniyil
Savoia, Alessandro Stuart
Lavigne, Frederik
Stubbe, Frederic
Dekker, Ronald
Giagka, Vasiliki  
Fraunhofer-Institut für Zuverlässigkeit und Mikrointegration IZM  
Mainwork
IEEE International Ultrasonics Symposium, IUS 2023. Proceedings  
Conference
International Ultrasonics Symposium 2023  
Open Access
DOI
10.1109/IUS51837.2023.10306557
Additional link
Full text
Language
English
Fraunhofer-Institut für Zuverlässigkeit und Mikrointegration IZM  
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