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A novel hydrogel based piezoresistive pressure sensor platform for chemical sensing.

机译:一种基于水凝胶的新型压阻式压力传感器平台,用于化学传感。

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摘要

New hydrogel-based micropressure sensor arrays for use in the fields of chemical sensing, physiological monitoring, and medical diagnostics are developed and demonstrated. This sensor technology provides reliable, linear, and accurate measurements of hydrogel swelling pressures, a function of ambient chemical concentrations. For the first time, perforations were implemented into the pressure sensors piezoresistive diaphragms, used to simultaneously increase sensor sensitivity and permit diffusion of analytes into the hydrogel cavity.;Fabrication was performed using a 14-step semiconductor fabrication process implementing a combination of potassium hydroxide (KOH) and deep reactive ion etching (DRIE) to create perforations. The sensor arrays (2x2) measure approximately 3 x 5 mm2 and used to measure full scale pressures of 50, 25, and 5 kPa, respectively. These specifications were defined by the various swelling pressures of ionic strength, pH and glucose specific hydrogels that were targeted in this work.;Initial characterization of the sensor arrays was performed using a custom built bulge testing apparatus that simultaneously measured deflection (optical profilometry), pressure, and electrical output. The new perforated diaphragm sensors were found to be fully functional with sensitivities ranging from 23 to 252 muV/V-kPa with full scale output (FSO) ranging from 5 to 80 mV.;To demonstrate proof of concept, hydrogels sensitive to changes in ionic strength were synthesized using hydroxypropyl-methacrylate (HPMA), N,N-dimethylaminoethyl-methacrylate (DMA) and a tetra-ethyleneglycol-dimethacrylate (TEGDMA) crosslinker. This hydrogel quickly and reversibly swells when placed environments of physiological buffer solutions (PBS) with ionic strengths ranging from 0.025 to 0.15 M. Chemical testing showed sensors with perforated diaphragms have higher sensitivity than those with solid diaphragms, and sensitivities ranging from 53.3+/-6.5 to 271.47+/-27.53 mV/V-M, depending on diaphragm size. Additionally, recent experiments show sensors utilizing Ultra Violet (UV) polymerized glucose sensitive hydrogels respond reversibly to physiologically relevant glucose concentrations from 0 to 20 mM.;It was shown through analytical and numerical (finite element) methods that pore shape, location, and size can be used to modify the diaphragm mechanics and concentrate stress within the piezoresistors, thus improving electrical output (sensitivity). An optimized pore pattern was chosen based on these numerical calculations.
机译:开发并演示了用于化学传感,生理监测和医学诊断领域的新型基于水凝胶的微压传感器阵列。这项传感器技术可提供可靠,线性和准确的水凝胶溶胀压力测量值,该值是环境化学浓度的函数。第一次在压力传感器的压阻膜片上打孔,用于同时增加传感器的灵敏度并允许分析物扩散到水凝胶腔中。;使用14步半导体制造工艺进行制造,实现了氢氧化钾的组合( KOH)和深反应离子蚀刻(DRIE)来形成穿孔。传感器阵列(2x2)的尺寸约为3 x 5 mm2,用于分别测量50、25和5 kPa的满刻度压力。这些规格是由这项工作所针对的离子强度,pH和葡萄糖特定水凝胶的各种溶胀压力定义的。传感器阵列的初始表征是使用定制的凸起测试设备进行的,该设备同时测量挠度(光学轮廓仪),压力和电力输出。新型多孔膜传感器功能齐全,灵敏度范围为23至252μV/ V-kPa,满量程输出(FSO)范围为5至80 mV。为证明概念验证,水凝胶对离子变化敏感使用甲基丙烯酸羟丙酯(HPMA),甲基丙烯酸N,N-二甲基氨基乙基酯(DMA)和四乙二醇-二甲基丙烯酸酯(TEGDMA)交联剂合成强度。当放置在离子强度范围为0.025至0.15 M的生理缓冲溶液(PBS)的环境中时,这种水凝胶会迅速而可逆地膨胀。化学测试表明,带有穿孔膜片的传感器比带有固体膜片的传感器具有更高的灵敏度,并且灵敏度范围为53.3 +/- 6.5至271.47 +/- 27.53 mV / VM,具体取决于膜片尺寸。此外,最近的实验表明,利用紫外线(UV)聚合的葡萄糖敏感水凝胶的传感器可对0至20 mM的生理相关葡萄糖浓度进行可逆反应;通过分析和数值(有限元)方法显示了其孔的形状,位置和大小可用于修改膜片力学并在压敏电阻内集中应力,从而提高电输出(灵敏度)。基于这些数值计算选择了优化的孔模式。

著录项

  • 作者

    Orthner, Michael P.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Engineering Biomedical.;Engineering Electronics and Electrical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 190 p.
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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