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Growth and Characterization of Chalcogenide Alloy Nanowires with Controlled Spatial Composition Variation for Optoelectronic Applications.

机译:具有可控的空间组成变化的硫族化物合金纳米线的生长和表征,用于光电应用。

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摘要

The energy band gap of a semiconductor material critically influences the operating wavelength of an optoelectronic device. Realization of any desired band gap, or even spatially graded band gaps, is important for applications such as lasers, light-emitting diodes (LEDs), solar cells, and detectors. Compared to thin films, nanowires offer greater flexibility for achieving a variety of alloy compositions. Furthermore, the nanowire geometry permits simultaneous incorporation of a wide range of compositions on a single substrate. Such controllable alloy composition variation can be realized either within an individual nanowire or between distinct nanowires across a substrate.;This dissertation explores the control of spatial composition variation in ternary alloy nanowires. Nanowires were grown by the vapor-liquid-solid (VLS) mechanism using chemical vapor deposition (CVD). The gas-phase supersaturation was considered in order to optimize the deposition morphology. Composition and structure were characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), energy dispersive x-ray spectroscopy (EDS), and x-ray diffraction (XRD). Optical properties were investigated through photoluminescence (PL) measurements.;The chalcogenides selected as alloy endpoints were lead sulfide (PbS), cadmium sulfide (CdS), and cadmium selenide (CdSe). Three growth modes of PbS were identified, which included contributions from spontaneously generated catalyst. The resulting wires were found capable of lasing with wavelengths over 4000 nm, representing the longest known wavelength from a sub-wavelength wire. For CdxPb1-xS nanowires, it was established that the cooling process significantly affects the alloy composition and structure. Quenching was critical to retain metastable alloys with x up to 0.14, representing a new composition in nanowire form. Alternatively, gradual cooling caused phase segregation, which created heterostructures with light emission in both the visible and mid-infrared regimes. The CdSSe alloy system was fully explored for spatial composition variation. CdSxSe1-x nanowires were grown with composition variation across the substrate. Subsequent contact printing preserved the designed composition gradient and led to the demonstration of a variable wavelength photodetector device. CdSSe axial heterostructure nanowires were also achieved. The growth process involved many variables, including a deliberate and controllable change in substrate temperature. As a result, both red and green light emission was detected from single nanowires.
机译:半导体材料的能带隙严重影响光电器件的工作波长。对于激光器,发光二极管(LED),太阳能电池和检测器等应用,实现任何所需的带隙,甚至在空间上分级的带隙都很重要。与薄膜相比,纳米线为实现多种合金成分提供了更大的灵活性。此外,纳米线的几何形状允许在单个衬底上同时结合多种组合物。这种可控的合金成分变化既可以在单个纳米线内实现,也可以在整个基板的不同纳米线之间实现。;本论文探索了对三元合金纳米线空间成分变化的控制。纳米线是使用化学气相沉积(CVD)通过气液固(VLS)机理生长的。为了优化沉积形态,考虑了气相过饱和。组成和结构通过扫描电子显微镜(SEM),透射电子显微镜(TEM),能量色散X射线光谱(EDS)和X射线衍射(XRD)进行表征。通过光致发光(PL)测量研究了光学性质。选定为合金终点的硫属元素化物为硫化铅(PbS),硫化镉(CdS)和硒化镉(CdSe)。鉴定了PbS的三种生长模式,包括自发产生的催化剂的贡献。发现所得导线能够发射超过4000 nm的波长的激光,该波长代表了来自亚波长导线的最长已知波长。对于CdxPb1-xS纳米线,已确定冷却过程会显着影响合金成分和结构。淬火对于保留x高达0.14的亚稳合金至关重要,代表了纳米线形式的新成分。另外,逐渐冷却会引起相分离,这会在可见光和中红外波段产生具有光发射的异质结构。充分探索了CdSSe合金系统的空间组成变化。 CdSxSe1-x纳米线的生长在整个基板上均随成分变化而变化。随后的接触印刷保留了设计的成分梯度,并导致了可变波长光电探测器设备的演示。还获得了CdSSe轴向异质结构纳米线。生长过程涉及许多变量,包括基板温度的故意和可控制的变化。结果,从单个纳米线检测到红色和绿色发光。

著录项

  • 作者

    Nichols, Patricia.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering General.;Engineering Materials Science.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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