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Sonochemical Synthesis of Zinc Oxide Nanostructures for Sensing and Energy Harvesting

机译:用于传感和能量收集的氧化锌纳米结构的声化学合成

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摘要

Semiconductor nanostructures have attracted considerable research interest due to their unique physical and chemical properties at nanoscale which open new frontiers for applications in electronics and sensing. Zinc oxide nanostructures with a wide range of applications, especially in optoelectronic devices and bio sensing, have been the focus of research over the past few decades. However ZnO nanostructures have failed to penetrate the market as they were expected to, a few years ago. The two main reasons widely recognized as bottleneck for ZnO nanostructures are (1) Synthesis technique which is fast, economical, and environmentally benign which would allow the growth on arbitrary substrates and (2) Difficulty in producing stable p-type doping. The main objective of this research work is to address these two bottlenecks and find a solution that is inexpensive, environmentally benign and CMOS compatible. To achieve this, we developed a Sonochemical method to synthesize 1D ZnO Nanorods, core-shell nanorods, 2D nanowalls and nanoflakes on arbitrary substrates which is a rapid, inexpensive, CMOS compatible and environmentally benign method and allows us to grow ZnO nanostructures on any arbitrary substrate at ambient conditions while most other popular methods used are either very slow or involve extreme conditions such as high temperatures and low pressure.A stable, reproducible p-type doping in ZnO is one of the most sought out application in the field of optoelectronics. Here in this project, we doped ZnO nanostructures using sonochemical method to achieve a stable and reproducible doping in ZnO. We have fabricated a homogeneous ZnO radial p-n junction by growing a p-type shell around an n-type core in a controlled way using the sonochemical synthesis method to realize ZnO homogeneous core-shell radial p-n junction for UV detection. ZnO has a wide range of applications from sensing to energy harvesting. In this work, we demonstrate the successful fabrication of an electrochemical immunosensor using ZnO nanoflakes to detect Cortisol and compare their performance with that of ZnO nanorods. We have explored the use of ZnO nanorods in energy harvesting in the form of Dye Sensitized Solar Cells (DSSC) and Perovskite Solar Cells.
机译:半导体纳米结构因其独特的纳米级物理和化学特性而吸引了相当多的研究兴趣,这为电子学和传感领域的应用打开了新的领域。在过去的几十年中,具有广泛应用的氧化锌纳米结构一直是研究的重点,尤其是在光电器件和生物传感领域。但是,ZnO纳米结构未能像几年前那样渗透到市场中。被广泛认为是ZnO纳米结构瓶颈的两个主要原因是:(1)快速,经济且环境友好的合成技术,该技术可在任意衬底上生长;(2)难以产生稳定的p型掺杂。这项研究工作的主要目的是解决这两个瓶颈,并找到一种价格低廉,对环境无害且与CMOS兼容的解决方案。为此,我们开发了一种声化学方法,可以在任意基板上合成一维ZnO纳米棒,核-壳纳米棒,二维纳米壁和纳米薄片,该方法是一种快速,廉价,兼容CMOS且对环境无害的方法,可让我们在任意任意位置上生长ZnO纳米结构在环境条件下使用衬底衬底,而其他大多数常用方法要么很慢,要么涉及高温和低压等极端条件。ZnO中稳定的,可重现的p型掺杂是光电领域最需要的应用之一。在此项目中,我们使用声化学方法对ZnO纳米结构进行掺杂,以实现ZnO中稳定且可重现的掺杂。我们通过使用声化学合成方法以受控方式在n型核周围生长p型壳来制造均匀的ZnO径向p-n结,以实现用于紫外线检测的ZnO均匀核-壳径向p-n结。 ZnO具有广泛的应用范围,从传感到能量收集。在这项工作中,我们演示了使用ZnO纳米薄片检测皮质醇并将其性能与ZnO纳米棒进行比较的电化学免疫传感器的成功制造。我们已经探索了以染料敏化太阳能电池(DSSC)和钙钛矿太阳能电池的形式在能量收集中使用ZnO纳米棒。

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    Vabbina Phani Kiran;

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  • 年度 2016
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