Department of Electrical and Computer Engineering, University of British Columbia, 2332 Main Mall, Vancouver, BC, Canada.
Biomed Microdevices. 2011 Apr;13(2):267-77. doi: 10.1007/s10544-010-9491-5.
This paper reports a micromachined drug delivery device that is wirelessly operated using radiofrequency magnetic fields for implant applications. The controlled release from the drug reservoir of the device is achieved with the microvalves of poly(N-isopropylacrylamide) thermoresponsive hydrogel that are actuated with a wireless resonant heater, which is activated only when the field frequency is tuned to the resonant frequency of the heater circuit. The device is constructed by bonding a 1-mm-thick polyimide component with the reservoir cavity to the heater circuit that uses a planar coil with the size of 5-10 mm fabricated on polyimide film, making all the outer surfaces to be polyimide. The release holes created in a reservoir wall are opened/closed by the hydrogel microvalves that are formed inside the reservoir by in-situ photolithography that uses the reservoir wall as a photomask, providing the hydrogel structures self-aligned to the release holes. The wireless heaters exhibit fast and strong response to the field frequency, with a temperature increase of up to 20°C for the heater that has the 34-MHz resonant frequency, achieving 38-% shrinkage of swelled hydrogel when the heater is excited at its resonance. An active frequency range of ~2 MHz is observed for the hydrogel actuation. Detailed characteristics in the fabrication and actuation of the hydrogel microvalves as well as experimental demonstrations of frequency-controlled temporal release are reported.
本文报道了一种无线操作的微药物输送装置,该装置采用射频磁场进行植入应用。通过使用无线谐振加热器来控制微阀,从而实现从设备药物储存器中受控释放,微阀由聚(N-异丙基丙烯酰胺)热响应水凝胶制成。只有当磁场频率调谐到加热器电路的谐振频率时,才能激活无线谐振加热器。该装置通过将具有 1 毫米厚的储液器腔室的聚酰亚胺组件与使用在聚酰亚胺薄膜上制造的尺寸为 5-10 毫米的平面线圈的加热器电路进行键合来构建,使所有外表面都由聚酰亚胺制成。在储液器壁上创建的释放孔通过水凝胶微阀打开/关闭,该水凝胶微阀通过使用储液器壁作为光掩模的原位光刻技术在储液器内部形成,从而提供与释放孔自对准的水凝胶结构。无线加热器对磁场频率表现出快速且强烈的响应,对于具有 34-MHz 谐振频率的加热器,温度升高高达 20°C,当加热器在其谐振时被激发时,溶胀水凝胶的收缩率达到 38%。观察到水凝胶致动的有效频率范围约为 2 MHz。报道了水凝胶微阀的制造和致动的详细特性,以及频率控制的时间释放的实验演示。