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首页> 外文期刊>RSC Advances >Fabrication of well-ordered silicon nanopillars embedded in a microchannel via metal-assisted chemical etching: a route towards an opto-mechanical biosensor
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Fabrication of well-ordered silicon nanopillars embedded in a microchannel via metal-assisted chemical etching: a route towards an opto-mechanical biosensor

机译:通过金属辅助化学蚀刻嵌入微通道中嵌入微通道的井有序硅纳米粒子:朝向光学生物传感器的途径

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摘要

Ordered nanopillars have been used as a smart configuration to design and fabricate localized surface plasmon resonance (LSPR) sensors. Importantly, these nanostructures can be integrated within microfluidic channels as a novel opportunity to enhance the response of biosensors and also to control the fluid flow by modifying the wettability surface of the walls. In this work, we demonstrate a large-scale and low-cost nanofabrication methodology that integrates the fabrication of silicon nanopillars (SiNPs) inside a microfluidic channel. The strategy is based on placing a catalytic gold layer patterned with nanoholes inside a SU-8 microchannel, by combining nanosphere lithography, reactive ion etching, and e-beam gold deposition, to control the area, separation distance and diameter of the nanostructures. The height of the SiNPs strongly depends on a well-controlled metal-assisted silicon etching protocol. We demonstrate experimentally that the design and the cleaning of the catalytic gold mesh using ultraviolet ozone strongly affect the etching rate for the formation of large-surface-area nanopillars. Our results explain the fast fabrication of hexagonal arrays of SiNPs embedded in a microfluidic channel with varying aspect ratio from 2 to 7 and separation of 300 nm and 400 nm, respectively, which has important implications for the achievement of new optomechanical biosensors.
机译:订购的纳米玻璃已被用作智能配置,以设计和制造局部表面等离子体谐振(LSPR)传感器。重要的是,这些纳米结构可以集成在微流体通道内作为提高生物传感器响应的新机会,并且还通过改变壁的润湿性表面来控制流体流动。在这项工作中,我们展示了大规模和低成本的纳米制作方法,其整合了微流体通道内的硅纳米玻璃(SINPS)的制造。该策略基于将纳米孔内部的催化金层放置在SU-8微通道内,通过组合纳米光刻,反应离子蚀刻和电子束金沉积来控制面积,分离距离和纳米结构的直径。 SINPS的高度强烈取决于良好控制的金属辅助硅蚀刻方案。我们通过实验证明了使用紫外线臭氧的催化金网的设计和清洁强烈影响形成大表面积纳米粒子的蚀刻速率。我们的研究结果解释了嵌入在微流体通道中的六角形阵列的快速制造,其不同的宽高比为2〜7,分别分离300nm和400nm,这对实现新的光学机械生物传感器具有重要意义。

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  • 来源
    《RSC Advances》 |2016年第88期|共9页
  • 作者单位

    Barcelona Inst Sci &

    Technol CSIC Catalan Inst Nanosci &

    Nanotechnol ICN2 Nanobiosensors &

    Bioanalyt Applicat Grp Campus UAB Barcelona 08193 Spain;

    Barcelona Inst Sci &

    Technol CSIC Catalan Inst Nanosci &

    Nanotechnol ICN2 Nanobiosensors &

    Bioanalyt Applicat Grp Campus UAB Barcelona 08193 Spain;

    Barcelona Inst Sci &

    Technol CSIC Catalan Inst Nanosci &

    Nanotechnol ICN2 Nanobiosensors &

    Bioanalyt Applicat Grp Campus UAB Barcelona 08193 Spain;

    Barcelona Inst Sci &

    Technol CSIC Catalan Inst Nanosci &

    Nanotechnol ICN2 Nanobiosensors &

    Bioanalyt Applicat Grp Campus UAB Barcelona 08193 Spain;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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