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Fabrication of large-area metal nanoparticle arrays by nanosphere lithography for localized surface plasmon resonance biosensors

机译:纳米球光刻技术制备用于表面等离子体共振生物传感器的大面积金属纳米颗粒阵列

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The localized surface plasmon resonance (LSPR) phenomenon that is characteristic of gold and silver nanoparticles has applications in areas such as portable and remote chemical and biological sensing. However, fabrication of metal nanoparticle arrays with high uniformity and repeatability, at a reasonable cost, is difficult. Nanosphere lithography (NSL) has been used to produce inexpensive nanoparticle arrays, through the use of monolayers of self-assembled microspheres as a deposition mask. However, lack of control over the location and size of the arrays, as well as poor uniformity over large areas, limits its use to research purposes. Here, we present large-area fabrication of nanoparticle arrays through both convective self-assembly NSL (CSANSL) and our new method, geometrically confined NSL (GCNSL). In GCNSL, microsphere assembly is confined to geometric patterns defined in photoresist. We show that 400nm polystyrene microspheres can be assembled inside of large arrays of photoresist trenches from 4-20um in width and 500um in length, with high uniformity, repeatability, and quality. Compared to CSANSL, GCNSL allows precise patterning of nanoparticle arrays for use in practical LSPR sensing devices, while still remaining inexpensive.
机译:金和银纳米颗粒的特征性局部表面等离振子共振(LSPR)现象已在便携式和远程化学与生物传感领域得到应用。然而,以合理的成本制造具有高均匀性和可重复性的金属纳米颗粒阵列是困难的。通过使用自组装微球的单层作为沉积掩模,纳米球光刻(NSL)已用于生产廉价的纳米颗粒阵列。但是,缺乏对阵列的位置和大小的控制以及大面积的均匀性差,限制了其用于研究目的。在这里,我们介绍了通过对流自组装NSL(CSANSL)和我们的新方法几何限制NSL(GCNSL)进行的大面积纳米粒子阵列的制造。在GCNSL中,微球组件仅限于光刻胶中定义的几何图案。我们展示了400nm的聚苯乙烯微球可以在宽4-20um,长500um的光致抗蚀剂沟槽的大阵列中组装,具有很高的均匀性,可重复性和质量。与CSANSL相比,GCNSL允许在实际的LSPR传感设备中使用的纳米颗粒阵列的精确图案,同时仍然保持便宜。

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