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Templated synthesis and characterization for multi-segmented nanowires for sensor and optical device applications.

机译:用于传感器和光学设备应用的多段纳米线的模板化合成和表征。

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摘要

Nanowires are one-dimensional, anisotropic nanocrystals with diameters generally ranging from 1--200 nm and lengths of up to several tens of microns. The most common methods of nanowire synthesis include chemical vapor deposition, solution phase synthesis, pressure injection, electrospinning, and electrodeposition. In this research, the electrodeposition method was utilized to synthesize both single and multi-segmented metal nanowires using anodized aluminum oxide (AAO) and polycarbonate (PC) membranes with varying pore diameters. Metal oxide nanowires were obtained through post-synthesis thermal annealing. Furthermore, the use of these nanowires in both sensing and optical applications is discussed.;Doping is an effective method that is utilized to change the properties of a material. In this research, different dopants, including indium, antimony, and nickel, were incorporated into the tin segment of the nanowires through the co-electrodeposition process. Thermal annealing of the doped tin nanowires resulted in doped tin oxide nanowires. One specific targeted application of the doped tin oxide nanowires is to increase the sensitivity and selectivity of the nanowire sensor devices. Characterization of the nanowires was conducted using scanning electron microscopy (SEM), energy dispersive x-ray spectroscopy (EDS), and x-ray photoelectron spectroscopy (XPS). Three- and five-segmented nanowires were fabricated, including Au-Sn/X-Au nanowires and Au-Pt-Sn/X-Pt-Au nanowires, in which X represents the dopant element. In the five- segmented nanowires, platinum is used as a barrier segment to prevent the inter-metallic diffusion between gold and tin. One segment pure tin nanowires with dopants were also fabricated. The doped nanowires were then used to fabricate sensor devices using either the top-down photolithography technique or bottom-up dielectrophoretic assembly.;In a separate project, electrodeposition was successfully utilized to fabricate cadmium sulfide (CdS) nanowires. Electrodeposition conditions were optimized to obtain good quality CdS nanowires using voltage control and deposition at elevated temperatures.;In the future, the doped tin oxide nanowires fabricated in this research will be implemented into sensor arrays for explosive and other gas or chemical detection. Doped metal oxide nanowire sensors or sensor arrays will be incorporated into a functional sensor system with data fusion, together with fluorescent polymer nanofiber sensors and surface acoustic wave (SAW) sensors that are being developed by other groups in an interdisciplinary team effort. For the CdS nanowire research, further experimentation is necessary to increase the yield of CdS nanowires and incorporate nanoscale lead-free solders onto these nanowires, which will be used as a nano-soldering technique for CdS nanowire assembly and integration.
机译:纳米线是一维各向异性纳米晶体,直径通常在1--200 nm之间,长度可达几十微米。纳米线合成的最常用方法包括化学气相沉积,溶液相合成,压力注入,静电纺丝和电沉积。在这项研究中,电沉积方法被用来使用具有可变孔径的阳极氧化铝(AAO)和聚碳酸酯(PC)膜来合成单节和多节金属纳米线。通过后合成热退火获得金属氧化物纳米线。此外,还讨论了这些纳米线在传感和光学应用中的使用。掺杂是一种有效的方法,可用来改变材料的特性。在这项研究中,通过共电沉积工艺将包括铟,锑和镍在内的不同掺杂物掺入了纳米线的锡段中。掺杂的锡纳米线的热退火导致掺杂的氧化锡纳米线。掺杂的氧化锡纳米线的一种特定的目标应用是增加纳米线传感器装置的灵敏度和选择性。使用扫描电子显微镜(SEM),能量色散X射线能谱(EDS)和X射线光电子能谱(XPS)对纳米线进行表征。制作了三段和五段的纳米线,包括Au-Sn / X-Au纳米线和Au-Pt-Sn / X-Pt-Au纳米线,其中X表示掺杂元素。在五段纳米线中,铂用作阻挡层,以防止金和锡之间的金属间扩散。还制造了一个带掺杂剂的纯锡纳米线段。然后,使用自上而下的光刻技术或自下而上的介电电泳组件将掺杂的纳米线用于制造传感器设备。在一个单独的项目中,电沉积已成功地用于制造硫化镉(CdS)纳米线。通过在高温下进行电压控制和沉积来优化电沉积条件,以获得高质量的CdS纳米线。将来,本研究中制造的掺杂氧化锡纳米线将用于传感器阵列中,以用于爆炸和其他气体或化学检测。掺杂的金属氧化物纳米线传感器或传感器阵列将与具有数据融合功能的功能传感器系统以及其他小组正在跨学科团队合作开发的荧光聚合物纳米纤维传感器和表面声波(SAW)传感器一起被并入。对于CdS纳米线的研究,需要进一步的实验来提高CdS纳米线的产量,并将纳米级无铅焊料结合到这些纳米线上,这将被用作CdS纳米线组装和集成的纳米焊接技术。

著录项

  • 作者

    Chin, Erica.;

  • 作者单位

    University of Massachusetts Lowell.;

  • 授予单位 University of Massachusetts Lowell.;
  • 学科 Engineering Chemical.
  • 学位 M.S.
  • 年度 2009
  • 页码 105 p.
  • 总页数 105
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程) ;
  • 关键词

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