Orthner M P, Buetefisch Sebastian, Magda J, Rieth L W, Solzbacher F
Department of Electrical and Computer Engineering, University of Utah, Salt Lake City, Utah, USA.
Sens Actuators A Phys. 2010 Jun;161(1-2):29-38. doi: 10.1016/j.sna.2010.05.023.
Hydrogels have been demonstrated to swell in response to a number of external stimuli including pH, CO(2), glucose, and ionic strength making them useful for detection of metabolic analytes. To measure hydrogel swelling pressure, we have fabricated and tested novel perforated diaphragm piezoresistive pressure sensor arrays that couple the pressure sensing diaphragm with a perforated semi-permeable membrane. The 2×2 arrays measure approximately 3 × 5 mm(2) and consist of four square sensing diaphragms with widths of 1.0, 1.25, and 1.5 mm used to measure full scale pressures of 50, 25, and 5 kPa, respectively. An optimized geometry of micro pores was etched in silicon diaphragm to allow analyte diffusion into the sensor cavity where the hydrogel material is located. The 14-step front side wafer process was carried out by a commercial foundry service (MSF, Frankfurt (Oder), Germany) and diaphragm pores were created using combination of potassium hydroxide (KOH) etching and deep reactive ion etching (DRIE).Sensor characterization was performed (without the use of hydrogels) using a custom bulge testing apparatus that simultaneously measured deflection, pressure, and electrical output. Test results are used to quantify the sensor sensitivity and demonstrate proof-of-concept. Simulations showed that the sensitivity was slightly improved for the perforated diaphragm designs while empirical electrical characterization showed that the perforated diaphragm sensors were slightly less sensitive than solid diaphragm sensors. This discrepancy is believed to be due to the influence of compressive stress found within passivation layers and poor etching uniformity. The new perforated diaphragm sensors were fully functional with sensitivities ranging from 23 to 252 μV/V-kPa (FSO= 5 to 80mV), and show a higher nonlinearity at elevated pressures than identical sensors with solid diaphragms. Sensors (1.5×1.5 mm(2)) with perforated diaphragms (pores=40 μm) have a nonlinearity of approximately 10% while for the identical solid diaphragm sensor it was roughly 3 % over the entire 200 kPa range. This is the first time piezoresistive pressure sensors with integrated diffusion pores for detection of hydrogel swelling pressure have been fabricated and tested.
水凝胶已被证明能响应多种外部刺激(包括pH值、二氧化碳、葡萄糖和离子强度)而膨胀,这使得它们可用于检测代谢分析物。为了测量水凝胶的膨胀压力,我们制作并测试了新型穿孔隔膜压阻式压力传感器阵列,该阵列将压力传感隔膜与穿孔半透膜相结合。2×2阵列尺寸约为3×5平方毫米,由四个宽度分别为1.0、1.25和1.5毫米的方形传感隔膜组成,分别用于测量50、25和5千帕的满量程压力。在硅隔膜中蚀刻出优化的微孔几何结构,以使分析物扩散到装有水凝胶材料的传感器腔体内。14步正面晶圆工艺由一家商业代工服务公司(德国法兰克福(奥得河)的MSF)完成,隔膜孔通过氢氧化钾(KOH)蚀刻和深反应离子蚀刻(DRIE)相结合的方式制作。使用定制的凸起测试设备对传感器进行表征(不使用水凝胶),该设备可同时测量挠度、压力和电输出。测试结果用于量化传感器灵敏度并证明概念验证。模拟结果表明,穿孔隔膜设计的灵敏度略有提高,而经验性电学表征表明,穿孔隔膜传感器的灵敏度略低于实心隔膜传感器。这种差异被认为是由于钝化层内存在压应力以及蚀刻均匀性差所致。新型穿孔隔膜传感器功能齐全,灵敏度范围为23至252微伏/伏-千帕(满量程输出=5至80毫伏),并且在高压下比相同的实心隔膜传感器表现出更高的非线性。带有穿孔隔膜(孔径=40微米)的传感器(1.5×1.5平方毫米)在整个200千帕范围内的非线性约为10%,而相同的实心隔膜传感器约为3%。这是首次制作并测试用于检测水凝胶膨胀压力的集成扩散孔压阻式压力传感器。