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Tailoring metal/metal oxide nanostructures for ultra-sensitive detection.

机译:定制用于超灵敏检测的金属/金属氧化物纳米结构。

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This thesis presents three diverse approaches to harnessing the material properties of nanostructures to produce ultra-sensitive detection platforms. In this work we have utilized nanostructure synthesis as the launching point for the creation of nanodevices with applications in chemical and biological sensing, catalysis and metrology.;Silver nanowires were electrodeposited into a porous aluminum oxide (PAO) template. When these templates are chemically etched the nanowires become exposed and eventually collapse into bundles that harbor interstices that function as "hot-spots" for Raman field enhancement. Surface enhanced Raman spectroscopy experiments were carried out on these substrates in two ways using benzenethiol as the Raman probe. In both experiments the SERS spectra show significant (~25 and ~50 fold respectively) increase in intensity over the initial value (when the tips were barely exposed).;Nanostructured titania (NST) thin films were produced by oxidizing titanium with hydrogen peroxide. These films are particularly well suited for integration into microfabricated sensing devices. The formation of NST relies on a re-deposition process in which an adequate amount of Ti-peroxo species must be generated and remain at the solid-solution interface. To reliably produce arrays of micro-patterned NST films on the wafer scale a patterning guide was developed and tested.;Wafer scale arrays of NST micro gas-sensors have been fabricated using standard thin film techniques. Sensing elements are 20 mum on a side. High sensitivity to hydrogen is achieved by modification of the sensors with platinum nanoparticles. When exposed to 10 mT of hydrogen at 250°C, the functionalized devices exhibit more than one order of magnitude decrease in resistance with a response time of ~7 seconds.;Both NST and tin (IV) oxide nanowires were coated in aminosilane self-assembled monolayers (SAMs) which have many applications in binding biomolecules. There has been a plethora of characterization techniques developed for SAMs but unluckily most of them rely on the SAM being on a planar surface. By "tailoring" our aminosilane SAM modified NSMO surfaces with borohydride reduced silver nanoparticles (AgNP) we are able to reliably image the SAMs using scanning electron microscopy (SEM). These AgNP modified SAMs may have many applications in catalysis, sensing and SERS.
机译:本文提出了三种利用纳米结构的材料特性产生超灵敏检测平台的方法。在这项工作中,我们利用纳米结构合成作为创建纳米器件的起点,并将其应用于化学和生物传感,催化和计量学中。银纳米线被电沉积到多孔氧化铝(PAO)模板中。当对这些模板进行化学蚀刻时,纳米线会暴露出来,并最终塌陷成束,这些束中带有空隙,这些空隙充当拉曼场增强的“热点”。使用苯硫酚作为拉曼探针以两种方式在这些基材上进行了表面增强拉曼光谱实验。在两个实验中,SERS光谱均显示强度比初始值(尖端几乎未暴露时)显着增加(分别为〜25倍和〜50倍)。纳米结构的二氧化钛(NST)薄膜是通过用过氧化氢氧化钛制得的。这些膜特别适合集成到微型传感设备中。 NST的形成依赖于重新沉积过程,在该过程中必须生成足够量的Ti-peroxo物种并保留在固溶体界面处。为了在晶片级上可靠地生产微图案化的NST薄膜阵列,开发并测试了图案化指南。; NST微型气体传感器的晶片级阵列已使用标准薄膜技术制造。感应元件的侧面为20毫米。通过用铂纳米粒子修饰传感器,可以获得对氢的高灵敏度。当在250°C的温度下暴露于10 mT的氢气中时,功能化的器件的电阻降低幅度超过一个数量级,响应时间约为7秒。NST和氧化锡(IV)纳米线均涂有氨基硅烷自涂层组装单分子膜(SAMs),在结合生物分子中有许多应用。已经为SAM开发了许多表征技术,但不幸的是,它们中的大多数技术都依赖于SAM位于平面上。通过“定制”我们的氨基硅烷SAM修饰的具有硼氢化物还原的银纳米颗粒(AgNP)的NSMO表面,我们能够使用扫描电子显微镜(SEM)可靠地对SAM成像。这些经过AgNP修饰的SAM在催化,传感和SERS中可能具有许多应用。

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