Zhou Jiawei, Kim Albert, Ziaie Babak
School of Electrical and Computer Engineering, Purdue University, 1205 W. State St., West Lafayette, IN, 47907, USA.
Birck Nanotechnology Center, Purdue University, 1205 W. State St., West Lafayette, IN, 47907, USA.
Biomed Microdevices. 2018 May 23;20(2):42. doi: 10.1007/s10544-018-0288-2.
In this paper, we present an ultrasonically controlled switching system that can save the battery power for implantable devices by turning the system on and off, on-demand. Ultrasonic control is employed to reduce the device size, increase the penetration depth, and reduce misalignment sensitivity associated with alternative techniques using permanent magnet and RF signal. As a proof-of-concept demonstration, a 665 kHz ultrasonic signal is used to activate a piezoelectric receiver which in turn switches a battery-powered RF system on-and-off. In-vitro tests show a reliable switching functionality at distances of up to 8 cm while consuming 43.5 nW (14.5 nA current consumption with 3 V power supply) when the system is in off-state, a factor of 10-100 times lower than the sleep-mode power consumption of typical RF SoC systems. The dimension of fabricated prototype is 6.3 × 16.7 × 2 mm allowing it to be easily incorporated into many existing implantable devices.
在本文中,我们展示了一种超声控制开关系统,该系统能够通过按需开启和关闭系统来节省植入式设备的电池电量。采用超声控制以减小设备尺寸、增加穿透深度,并降低与使用永磁体和射频信号的替代技术相关的对准误差敏感性。作为概念验证演示,使用665kHz的超声信号激活压电接收器,该接收器进而对电池供电的射频系统进行开关操作。体外测试表明,在距离高达8cm时具有可靠的开关功能,当系统处于关闭状态时功耗为43.5nW(在3V电源下电流消耗为14.5nA),比典型射频系统芯片的睡眠模式功耗低10至100倍。所制造原型的尺寸为6.3×16.7×2mm,使其能够轻松集成到许多现有的植入式设备中。