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Zno Micro/Nanostructures Grown on Sapphire Substrates Using Low-Temperature Vapor-Trapped Thermal Chemical Vapor Deposition: Structural and Optical Properties

机译:使用低温气相陷阱热化学气相沉积法在蓝宝石衬底上生长的Zno微米/纳米结构:结构和光学性质

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摘要

In this research, the Zn(C5H7O2)2·xH2O-based growth of ZnO microanostructures in a low temperature, vapor-trapped chemical vapor deposition system was attempted to optimize structural and optical properties for potential biomedical applications. By trapping in-flow gas molecules and Zinc vapor inside a chamber tube by partially obstructing a chamber outlet, a high pressure condition can be achieved, and this experimental setup has the advantages of ease of synthesis, being a low temperature process, and cost effectiveness. Empirically, the growth process proceeded under a chamber condition of an atmospheric pressure of 730 torr, a controlled volume flow rate of input gas, N2/O2, of 500/500 Standard Cubic Centimeters per Minute (SCCM), and a designated oven temperature of 500 °C. Specifically, the dependence of structural and optical properties of the structures on growth duration and spatially dependent temperature were investigated utilizing scanning electron microscopy, X-ray diffraction (XRD), photoluminescence (PL), and ultraviolet-visible transmission spectroscopy. The experimental results indicate that the grown thin film observed with hexagonal structures and higher structural uniformity enables more prominent structural and optical signatures. XRD spectra present the dominant peaks along crystal planes of (002) and (101) as the main direction of crystallization. In addition, while the structures excited with laser wavelength of 325 nm emit a signature radiation around 380 nm, an ultraviolet lamp with a wavelength of 254 nm revealed distinctive photoluminescence peaks at 363.96 nm and 403.52 nm, elucidating different degrees of structural correlation as functions of growth duration and the spatial gradient of temperature. Transmittance spectra of the structures illustrate typical variation in the wavelength range of 200 nm to 400 nm, and its structural correlation is less significant when compared with PL.
机译:在这项研究中,试图在低温,气相捕获化学气相沉积系统中基于Zn(C5H7O2)2·xH2O的ZnO微/纳米结构生长来优化结构和光学性能,以用于潜在的生物医学应用。通过部分阻塞腔室出口将流入的气体分子和锌蒸气捕获在腔室管内,可以达到高压条件,并且该实验装置具有易于合成,低温工艺和成本效益的优点。 。根据经验,生长过程是在以下条件下进行的:大气压为730 torr,输入气体的受控体积流量N2 / O2为每分钟500/500标准立方厘米(SCCM),指定的柱箱温度为500℃。具体而言,利用扫描电子显微镜,X射线衍射(XRD),光致发光(PL)和紫外可见透射光谱法研究了结构的结构和光学性质对生长持续时间和空间依赖性温度的依赖性。实验结果表明,观察到的具有六边形结构和更高结构均匀性的生长薄膜可以使结构和光学特征更加突出。 XRD光谱呈现出沿(002)和(101)的晶面的主要峰作为结晶的主要方向。此外,虽然用325 nm激光激发的结构发出380 nm左右的特征辐射,但波长254 nm的紫外灯在363.96 nm和403.52 nm处显示出独特的光致发光峰,阐明了不同程度的结构相关性与生长持续时间和温度的空间梯度。结构的透射光谱说明了200 nm至400 nm波长范围内的典型变化,与PL相比,其结构相关性不那么显着。

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