Annayev Muhammetgeldi, Yamaner Feysel Yalçın, Oralkan Ömer
Electrical and Computer Engineering, NC State University, 890 Oval, Drive, EB II, Raleigh, 27606, NC, USA.
Microsyst Nanoeng. 2025 Apr 23;11(1):70. doi: 10.1038/s41378-025-00902-w.
Capacitive micromachined ultrasonic transducer (CMUT) technology is a potential candidate to implement an ultrasonic power receiver for implantable medical devices (IMDs) because CMUT technology employs photolithography-based microfabrication techniques amenable to miniaturization, integration with electronics, and biocompatibility. Pre-charged CMUTs operating in constant-charge mode eliminate the DC bias and this mode of operation is more suitable for ultrasound power transfer to IMDs. We designed and fabricated a novel pre-charged CMUT structure with a built-in charge storage capacitor. This new configuration features a floating electrode between the upper and lower electrodes. Charges are stored on this floating electrode prior to implantation by directly bringing the floating electrode into contact with the bottom electrode while applying a DC bias between the top and bottom electrodes of the CMUT. After pre-charging the CMUT, the charges are retained without any leakage, as confirmed by occasional measurements over the course of about two years. We have also demonstrated that this device allows operation without a DC bias and can be used as a power receiver in an IMD. In the presented design, the CMUT can be pre-charged at a desired precise charge level. The amount of trapped charge can be controlled by holding the floating electrode in contact with the bottom electrode by applying external ultrasound pressure and simultaneously maintaining a DC bias. The maximum received power was 10.1 mW, corresponding to a received power density of 3.1 mW/mm, with a 14.5% efficiency. We have achieved an acoustic-to-electrical power conversion efficiency as high as 29.7% at lower input power levels.
电容式微机械超声换能器(CMUT)技术是为可植入医疗设备(IMD)实现超声功率接收器的潜在候选技术,因为CMUT技术采用基于光刻的微加工技术,易于小型化、与电子器件集成以及具备生物相容性。在恒电荷模式下工作的预充电CMUT消除了直流偏置,这种工作模式更适合向IMD进行超声功率传输。我们设计并制造了一种具有内置电荷存储电容器的新型预充电CMUT结构。这种新配置的特点是在上下电极之间有一个浮动电极。在植入前,通过在CMUT的顶部和底部电极之间施加直流偏置,使浮动电极直接与底部电极接触,将电荷存储在这个浮动电极上。对CMUT进行预充电后,电荷能够无泄漏地保留下来,在大约两年的时间里偶尔进行的测量证实了这一点。我们还证明了该器件无需直流偏置即可工作,并且可以用作IMD中的功率接收器。在本设计中,CMUT可以在所需的精确电荷水平下进行预充电。通过施加外部超声压力并同时保持直流偏置,使浮动电极与底部电极接触,可以控制捕获的电荷量。最大接收功率为10.1 mW,对应的接收功率密度为3.1 mW/mm,效率为14.5%。在较低输入功率水平下,我们实现了高达29.7%的声电功率转换效率。