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Functional applications of Al·Al2O3 nanowires : laser assisted α-Al2O3 synthesis and fabrication of micro-/nanostructured surfaces for cell compatibility studies

机译:Al·Al2O3纳米线的功能应用:激光辅助α-Al2O3的合成以及用于细胞相容性研究的微/纳米结构表面的制造

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摘要

Recently, one-dimensional (1D) nanostructures have attracted considerable interest of nanoscience studies as well as nanotechnology applications. Especially 1D hetero-structural nanowires with a combination of two different materials, for instance metal/metal oxide composites, hold a great potential for various photonic and electronic applications. Thus, Al·Al2O3 core-shell nanowires, which were firstly reported by Veith et al., form an interesting class of such hetero-nanostructures.This thesis describes the preparation of functional surfaces composed of 1D nanostructures by CVD of a (tBuOAlH2)2 [bis(tert-butoxyaluminum dihydride)] precursor and laser treatment of such structures. Firstly, main attention is given to understand the underlying mechanisms controlling the 1D growth of Al·Al2O3 nanostructures. By applying systematically different deposition temperatures and flow rates, various nanostructures were synthesized. At high deposition temperatures chaotic Al·Al2O3 nanowires form, whereas at low deposition temperatures worm- and loop-like nanostructures are achieved. A new mask-less local deposition method, named selective CVD (SCVD), is introduced by selective heating of the substrate with electro magnetic induction. A controlled thermal gradient leads to the observation of stepwise 1D growth of nanostructures. As a continuation the of the local deposition approach,an LCVD system has been designed and fabricated to show the possibility to grow 1D complex structures. α-Al2O3 layers were synthesized by laser induced heating of deposited Al·Al2O3 nanowires. In particular, two laser processing approaches were investigated: continuous wave (CW) laser and pulsed laser treatments. CW laser treatment is useful to produce dense and fully crystalline α-Al2O3 layers which may be employed as hard and protective coatings. Pulsed laser treatment produces a large variety of nanostructures (nanopores, nanoprotrusions, nanospheres etc.) of Al2O3 which is interesting for studying cell-surface interactions.Micro /nanostructured surfaces prepared by direct deposition of (tBuOAlH2)2 and laser treatment were tested for biocompatibility. Jurkat cells seem to adhere selectively on Al·Al2O3 nanowires which may lead to applications in cancer diagnosis and therapy. Laser treated Al·Al2O3 layers exhibit a better biocompatibility for normal human dermal fibroblast (NHDF) cells. In addition, a preliminary study on neurons showed that Al·Al2O3 nanowires provide enhanced cellular adhesion and growth which can be interesting for various applications in medical fields as well as in biosciences.
机译:最近,一维(1D)纳米结构引起了纳米科学研究和纳米技术应用的极大兴趣。特别是具有两种不同材料(例如金属/金属氧化物复合材料)组合的一维异质结构纳米线,在各种光子和电子应用中具有巨大的潜力。因此,Veith等人首先报道的Al·Al2O3核壳纳米线形成了一种有趣的这类杂化纳米结构。本文描述了通过(tBuOAlH2)2的CVD制备由一维纳米结构组成的功能表面的过程。 [双(叔丁氧基铝二氢化物)]前体和此类结构的激光处理。首先,主要注意了解控制Al·Al2O3纳米结构一维生长的潜在机理。通过系统地应用不同的沉积温度和流速,合成了各种纳米结构。在高沉积温度下,会形成混乱的Al·Al2O3纳米线,而在低沉积温度下,会形成蠕虫状和环状的纳米结构。通过用电磁感应选择性加热基板,引入了一种新的无掩模局部沉积方法,称为选择性CVD(SCVD)。受控的热梯度导致观察到纳米结构的逐步一维生长。作为局部沉积方法的延续,已设计并制造了LCVD系统以显示生长一维复杂结构的可能性。通过激光诱导沉积的Al·Al2O3纳米线的激光合成α-Al2O3层。特别是,研究了两种激光处理方法:连续波(CW)激光和脉冲激光处理。 CW激光处理可用于生产致密且完全结晶的α-Al2O3层,可用作硬质和保护性涂层。脉冲激光处理产生了各种各样的Al2O3纳米结构(纳米孔,纳米突起,纳米球等),这对于研究细胞表面的相互作用很有意义。 。 Jurkat细胞似乎选择性地粘附在Al·Al2O3纳米线上,这可能会导致其在癌症诊断和治疗中的应用。激光处理的Al·Al2O3层对正常人的皮肤成纤维细胞(NHDF)具有更好的生物相容性。此外,对神经元的初步研究表明,Al·Al2O3纳米线提供了增强的细胞粘附和生长,这对于医学领域和生物科学中的各种应用可能是有趣的。

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    Aktas Oral Cenk;

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  • 年度 2009
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