无线
超声波传感器
晶体管
压电
电池(电)
材料科学
场效应晶体管
传感器
电压
电气工程
超声波
声学
电子工程
计算机科学
生物医学工程
工程类
电信
功率(物理)
物理
量子力学
作者
Sahil Sharma,Carole‐Anne Lernoud,Bruno Fain,Riadh Othmen,Vincent Bouchiat,Blaise Yvert,C. Hébert
标识
DOI:10.1002/admt.202300163
摘要
Abstract The development of wireless and battery‐free sensors for biomedical applications is a fast growing research and industrial field. It promises to greatly improve the patient's comfort during the diagnosis phase, but also in the treatment of chronic diseases. While the standard technologies are based so far on electromagnetic waves, ultrasonic powering and communication is offering perspectives to further reduce the size of the sensor in order to develop minimally invasive electronic implants. Wireless and battery‐free ultrasound‐based devices for healthcare monitoring comprise a piezoelectric element for the powering and communication, and a variable shunt load that varies according to a physiological parameter of interest. The changes in the load modify the acoustic reflectivity of the piezoelectric element, which can be detected using a pulse‐echo protocol. In the present study, the use of graphene solution‐gated field‐effect transistor is introduced as a new type of shunt load. Using an mm‐sized device, it is shown that the amplitude of an ultrasonic wave that reflects on the piezoelectric component is modulated by the voltage applied on the gate of the transistor both in physiological medium and biological tissue. This study sets the basis toward a new type of ultrasound‐based wireless and battery‐free biosensors.
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