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Nanoparticle Based Printed Sensors on Paper for Detecting Chemical Species

机译:基于纳米粒子的印刷传感器,用于检测化学物质的纸张

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There has been an increasing need of technologies to manufacturing chemical and biological sensors for various applications ranging from environmental monitoring to human health monitoring. Currently, manufacturing of most chemical and biological sensors relies on a variety of standard microfabrication techniques, such as physical vapor deposition and photolithography, and materials such as metals and semiconductors. Though functional, they are hampered by high cost materials, rigid substrates, and limited surface area. Paper based sensors offer an intriguing alternative that is low cost, mechanically flexible, has the inherent ability to filter and separate analytes, and offers a high surface area, permeable framework advantageous to liquid and vapor sensing. However, a major drawback is that standard microfabrication techniques cannot be used in paper sensor fabrication. To fabricate sensors on paper, low temperature additive techniques must be used, which will require new manufacturing processes and advanced functional materials. In this work, we focus on using aerosol jet printing as a highresolution additive process for the deposition of ink materials to be used in paper-based sensors. This technique can use a wide variety of materials with different viscosities, including materials with high porosity and particles inherent to paper. One area of our efforts involves creating interdigitated microelectrodes on paper in a one-step process using commercially available silver nanoparticle and carbon black based conductive inks. Another area involves use of specialized filter papers as substrates, such as multi-layered fibrous membrane paper consisting of a poly(acrylonitrile) nanofibrous layer and a nonwoven poly(ethylene terephthalate) layer. The poly(acrylonitrile) nanofibrous layer are dense and smooth enough to allow for high resolution aerosol jet printing. With additively fabricated electrodes on the paper, molecularly-functionalized metal nanoparticles are deposited by molecularly-mediated assembling, drop casting, and printing (sensing and electrode materials), allowing full functionalization of the paper, and producing sensor devices with high surface area. These sensors, depending on the electrode configuration, are used for detection of chemical and biological species in vapor phase, such as water vapor and volatile organic compounds, making them applicable to human performance monitoring. These paper based sensors are shown to display an enhancement in sensitivity, as compared to control devices fabricated on non-porous polyimide substrates. These results have demonstrated the feasibility of paper-based printed devices towards manufacturing of a fully wearable, highly-sensitive, and wireless human performance monitor coupled to flexible electronics with the capability to communicate wirelessly to a smartphone or other electronics for data logging and analysis.
机译:对于制造化学和生物传感器的各种应用,越来越需要越来越多的技术,从环境监测到人体健康监测。目前,大多数化学和生物传感器的制造依赖于各种标准微制造技术,例如物理气相沉积和光刻,以及金属和半导体等材料。虽然功能性,但它们被高成本材料,刚性基板和有限的表面积受到阻碍。纸张的传感器提供了一种较低的替代方案,其低成本,机械柔性,具有过滤和分析物的固有能力,并提供了对液体和蒸汽感测的高表面积,可渗透框架。然而,主要缺点是标准微制造技术不能用于纸张传感器制造。为了在纸上制造传感器,必须使用低温添加剂技术,这需要新的制造工艺和先进的功能材料。在这项工作中,我们专注于使用气溶胶喷射印刷作为沉积墨水材料沉积的高级速添加剂,以便在纸张的传感器中使用。该技术可以使用具有不同粘度的各种各样的材料,包括具有高孔隙率和纸张固有的粒子的材料。我们的努力的一个领域涉及使用市售的银纳米粒子和基于炭黑的导电油墨在一步法中在一步程中在纸上创建纸张上的互化微电极。另一个区域涉及使用专用过滤纸作为基材,例如由聚(丙烯腈)纳米纤维层和非织造聚合物(乙二醇酯)层组成的多层纤维膜纸。聚(丙烯腈)纳米纤维层致密且足够平滑,以允许高分辨率气溶胶喷射印刷。对于纸上的含有添加剂的电极,通过分子介导的组装,下降铸造和印刷(传感和电极材料)沉积分子官能化的金属纳米颗粒,允许纸张的全官能化,并产生具有高表面积的传感器装置。这些传感器根据电极构造,用于检测气相中的化学和生物物质,例如水蒸气和挥发性有机化合物,使其适用于人类性能监测。与在非多孔聚酰亚胺基材上制造的控制装置相比,这些基于纸的传感器显示在灵敏度的增强。这些结果表明了纸张的印刷设备朝向制造完全可穿戴,高度敏感和无线人类性能监视器的可行性,该无线人类性能监测器耦合到柔性电子设备,能够将无线通信到智能手机或其他电子设备以进行数据记录和分析。

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