首页> 外文学位 >Fabrication and optical properties of (I) Erbium-doped nanowires containing germanium and/or zinc oxide and (II) Porous germanium nanowires .
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Fabrication and optical properties of (I) Erbium-doped nanowires containing germanium and/or zinc oxide and (II) Porous germanium nanowires .

机译:(I)含锗和/或氧化锌的掺b纳米线以及(II)多孔锗纳米线的制备和光学性能。

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摘要

Nanomaterials have attracted great attention in the past two decades due to their superior mechanical, thermal, chemical, electrical and optical properties entirely different from bulk materials, which lead to numerous potential applications in nanodevices and nanoelectronics, such as FETs, LEDs, single electron memory devices, spin polarized electronics, quantum computing, sensors, photonic crystals/devices, solar cells etc.;Based on the previous work on Er-doped GeNWs, a core-shell nanostructure was built by introducing Zn/ZnO shell onto Er-doped GeNWs. It was found that Zn sources and corresponding surface modification processes (CVD and PVD) have important impact on Er3+ PL and ZnO UV/visible PL due to Zn2GeO4 formation, which were confirmed by HRTEM and XRD measurements. In another work, Ge and Er were used to modify the surface of ZnO tetrapods. Both strong ZnO visible PL and Er3+ PL were observed; considerable enhancement of Er3+ PL was made possible by Ge deposition as a sensitizer layer. The Zn2GeO4 phase observed could either separate from the ZnO phase or mix uniformly with the ZnO phase. As a control system, Er/GeOx/ZnO nanofibers were fabricated by electrospinning of selected sol-gel precursor solutions. These types of nanofibers exhibited strong Er3+ near IR PL at 1.54 mum after annealing to remove the polymer template. XRD spectra indicate that the Er/Ge/Zn mixture likely forms a disordered phase, especially with high Er3+ concentrations, which contributes to the strong Er 3+ PL with the reduction of Er-Er interactions.;In another work, the fabrication of F-doped ZnO nanowires was investigated on different substrates with or without carrier gas (Ar). ZnO UV/visible PL spectra indicate that F-doping diminished the intensity of defect light emission at ∼2.4 eV. Furthermore, ZnO/F-doped ZnO core-shell NWs were fabricated either by PVD or CVD processes; the PVD method provides better crystalline shell structures after annealing.;The last work describes the fabrication of porous Ge nanowires by the anodization of Ge nanowires (grown on Si substrates) using ethanolic HCl as an electrolyte. An initial cathodic Cu electrodeposition step is found to provide useful kinetic control of the pore morphology and to stabilize the nanowires attached to the Si surface. A systematic evaluation of the role of electrolyte composition, current/voltage density, and its duration on the resultant Ge NW morphology and structure have been carried out. Preliminary photoluminescence (PL) measurements suggest strong emission in the visible region. The electrochemical anodization mechanism is discussed involving the periodic localization of pores and a varying potential distribution of free electrons along 1D GeNWs.
机译:纳米材料由于其优越的机械,热,化学,电和光学性质与块状材料完全不同,在过去的二十年中引起了极大的关注,这导致了纳米器件和纳米电子学中的众多潜在应用,例如FET,LED,单电子存储器件,自旋极化电子器件,量子计算,传感器,光子晶体/器件,太阳能电池等;基于先前对掺Er的GeNWs的研究,通过将Zn / ZnO壳引入掺Er的GeNWs来构建核-壳纳米结构。 。发现锌源和相应的表面改性工艺(CVD和PVD)由于形成Zn2GeO4而对Er3 + PL和ZnO UV /可见光PL有重要影响,这已通过HRTEM和XRD测量得到了证实。在另一项工作中,Ge和Er用于修饰ZnO四脚架的表面。观察到强的ZnO可见光PL和Er3 + PL;通过Ge沉积作为敏化层,可以显着增强Er3 + PL。观察到的Zn2GeO4相可能与ZnO相分离或与ZnO相均匀混合。作为控制系统,Er / GeOx / ZnO纳米纤维是通过电纺所选的溶胶-凝胶前体溶液制成的。退火去除聚合物模板后,这些类型的纳米纤维在1.54微米处的IR PL附近表现出较强的Er3 +。 XRD谱图表明,Er / Ge / Zn混合物可能形成无序相​​,尤其是在高Er3 +浓度下,这有助于增强Er 3+ PL,减少Er-Er相互作用。在有或没有载气(Ar)的不同衬底上研究了掺杂ZnO纳米线。 ZnO UV /可见光PL光谱表明,F掺杂降低了〜2.4 eV处缺陷发光的强度。此外,通过PVD或CVD工艺制备了ZnO / F掺杂的ZnO核壳NW。最后的工作描述了使用乙醇HCl作为电解质,通过阳极氧化Ge纳米线(生长在Si衬底上)来制造多孔Ge纳米线的方法。发现初始的阴极铜电沉积步骤可以提供有用的动力学控制孔的形态,并稳定附着在Si表面的纳米线。已经对电解质成分,电流/电压密度及其持续时间对所得的Ge NW形态和结构的作用进行了系统的评估。初步的光致发光(PL)测量表明在可见光区域有较强的发射。讨论了电化学阳极氧化机理,涉及孔的周期性定位和自由电子沿一维GeNWs的变化电位分布。

著录项

  • 作者

    Huang, Xuezhen.;

  • 作者单位

    Texas Christian University.;

  • 授予单位 Texas Christian University.;
  • 学科 Chemistry Inorganic.;Nanoscience.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 228 p.
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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