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APS -2017 Annual Meeting of the APS Mid-Atlantic Section- Event - Growth and Characterization of ZnO Nanowires for Biological Sensing Applications

机译:APS -2017年APS大西洋中部分会年会-活动-用于生物传感应用的ZnO纳米线的生长和表征

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We present data on the growth of ZnO nanowires, which are under development as a less toxic alternative to quantum dots. Nanowires, grown via thermal oxidation of seed particles deposited by laser ablation, were characterized by scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS) and atomic force microscopy (AFM). AFM studies focused on the details of the growth processes that occur on sub-100 nm seed particles. There appear to be three main archetypes of wire decorated nanoparticles, they follow a general trend in the sizes of ``seed'' particles from which wires originate, as well as the width, length, and variety of their nanowires. We bin the seed particles into three classes by diameter, small (extasciitilde 1 nm), medium (extasciitilde 2.5-5 nm), and large (extasciitilde 7-10 nm). Small seeds give rise to short nanowire spikes, extasciitilde 0.5 nm in length, medium seeds give rise to intermediate length wires, 4-12 nm in length, and large seeds give rise to longer wires, 20-40 nm in length. This suggests that the size of the particle is qualitatively related to the ``upper ceiling'' on potential nanowire length.SEM studies focused on the details of growth processes that occur on 100 nm to 1 extmu m seed particles. Large particles exhibits a remarkable growth regime in which nanowires completely consume the seed particle.
机译:我们提供了有关ZnO纳米线生长的数据,这些数据正在开发中,可作为量子点的低毒替代品。通过对通过激光烧蚀沉积的种子粒子进行热氧化而生长的纳米线,通过扫描电子显微镜(SEM),能量色散光谱(EDS)和原子力显微镜(AFM)进行了表征。原子力显微镜的研究集中在亚100 nm种子颗粒上发生的生长过程的细节。导线装饰的纳米粒子似乎有三种主要的原型,它们遵循导线起源的``种子''粒子的大小,其纳米线的宽度,长度和种类的总体趋势。我们将种子粒子按直径分为三类,即小(extasciitilde 1 nm),中(extasciciililde 2.5-5 nm)和大(extasciciilde 7-10 nm)。小种子产生短的纳米线尖峰,长度为0.5 nm,中等种子产生中等长度的线,长度为4-12 nm,大种子产生更长的线,长度为20-40 nm。这表明粒子的大小与潜在纳米线长度的``上限''在质量上相关.SEM研究着重于100 nm至1 extmu m种子粒子上发生的生长过程的细节。大颗粒表现出了显着的生长机制,其中纳米线完全消耗了种子颗粒。

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