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A Remotely Readable, Self-authenticating Tamper Evident Seal Based on Graphene-based Materials and Compressive Sensing

机译:基于石墨烯材料和压感的可远程读取,自我认证的防篡改密封

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Low-cost, high-precision patterning of flexible electrical components have gained special attention in many applications where multi-functional materials fuse structural support with electrical sensing. In particular, a number of structural health monitoring (SHM) applications call for the development of "sensing skin" technologies. One application that uses these technologies includes the development of next-generation tamper-evident seals (TES) that are capable of being read remotely. In our design, the state of the TES's physical structure is monitored through an electrical circuit based on a conductive material. Electrical changes in the TES's circuit correspond to material property changes induced by humidity, temperature, or chemical changes. Intrinsically unifying material and electrical properties, graphene and graphite derivatives promote simplistic manufacturing of flexible materials with unique electrical properties that are attractive forsensingskinapplications. In addition to developing a functional graphene-based material, an encryption scheme to transmit the state of the material is devised utilizing compressive sensing. Our work focuses on the production of printable graphene-based materials and graphene-based/polymeric composites proficient for sensing environmental changes. Printing of functional complex graphene-based materials requires specific formulation while balancing electrical conductivity, formulation simplicity, solution viscosity, and printing compatibility. Production of electrically stable components on flexible substrates with programmable electrical properties will be key to using printed graphene-based materials in sensing skin applications.
机译:柔性电子元件的低成本,高精度图案化在多功能材料将结构支撑与电感应融合的许多应用中受到了特别关注。特别是,许多结构健康监视(SHM)应用程序要求开发“传感皮肤”技术。使用这些技术的一个应用程序包括开发能够远程读取的下一代防篡改密封件(TES)。在我们的设计中,通过基于导电材料的电路监控TES物理结构的状态。 TES电路中的电气变化与湿度,温度或化学变化引起的材料特性变化相对应。石墨烯和石墨衍生物本质上统一了材料和电学特性,可简化具有独特电学特性的柔性材料的制造,这对于传感皮肤应用具有吸引力。除了开发基于功能石墨烯的材料外,还利用压缩感测设计了一种传输材料状态的加密方案。我们的工作集中在精通可感知环境变化的可印刷石墨烯基材料和石墨烯基/聚合物复合材料的生产上。功能性复杂的基于石墨烯的材料的印刷需要特定的配方,同时还要兼顾电导率,配方简单性,溶液粘度和印刷兼容性。在具有可编程电性能的柔性基板上生产电稳定组件将是在传感皮肤应用中使用印刷的石墨烯基材料的关键。

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