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Physically Unclonable Surfaces via Dewetting of Polymer Thin Films

机译:通过脱湿的聚合物薄膜的物理上不可渗透的表面

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From anti-counterfeiting to biotechnology applications, there is a strong demand for encoded surfaces with multiple security layers that are prepared by stochastic processes and are adaptable to deterministic fabrication approaches. Here, we present dewetting instabilities in nanoscopic (thickness <100 nm) polymer films as a form of physically unclonable function (PUF). The inherent randomness involved in the dewetting process presents a highly suitable platform for fabricating unclonable surfaces. The thermal annealing-induced dewetting of poly(2-vinyl pyridine) (P2VP) on polystyrene-grafted substrates enables fabrication of randomly positioned functional features that are separated at a microscopic length scale, a requirement set by optical authentication systems. At a first level, PUFs can be simply and readily verified via reflection of visible light. Area-specific electrostatic interactions between P2VP and citrate-stabilized gold nanoparticles allow for fabrication of plasmonic PUFs. The strong surface-enhanced Raman scattering by plasmonic nanoparticles together with incorporation of taggants facilitates a molecular vibration-based security layer. The patterning of P2VP films presents opportunities for fabricating hybrid security labels, which can be resolved through both stochastic and deterministic pathways. The adaptability to a broad range of nanoscale materials, simplicity, versatility, compatibility with conventional fabrication approaches, and high levels of stability offer key opportunities in encoding applications.
机译:从防伪到生物技术应用,对具有多个安全层的编码表面有着强烈的需求,这些编码表面通过随机过程制备,并适用于确定性制造方法。在这里,我们将纳米级(厚度<100nm)聚合物薄膜中的脱湿不稳定性作为物理不可压缩函数(PUF)的一种形式。脱湿过程中固有的随机性为制造不可压缩表面提供了一个非常合适的平台。聚苯乙烯接枝基材上的聚(2-乙烯基吡啶)(P2VP)的热退火诱导脱湿能够制造在微观长度尺度上分离的随机定位功能特征,这是光学认证系统设定的要求。在第一个层次上,可以通过可见光的反射简单而容易地验证PUF。P2VP和柠檬酸盐稳定的金纳米颗粒之间的特定面积静电相互作用允许制备等离子体PUF。等离子体纳米颗粒的强表面增强拉曼散射与taggants的结合有助于形成基于分子振动的安全层。P2VP薄膜的图案化为制造混合安全标签提供了机会,这可以通过随机和确定性途径来解决。对各种纳米材料的适应性、简单性、多功能性、与传统制造方法的兼容性以及高水平的稳定性为编码应用提供了关键机会。

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