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Multi-junction ZnO Nanowires for Enhanced Surface Area and Light Trapping Solar Cells and Room Temperature Gas Sensing

机译:多结ZnO纳米线,用于增强表面积和光阱太阳能电池以及室温气体感测

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摘要

A maskless method of employing polymer growth inhibitor layers is used to modulate the conflicting parameters of density and alignment of multi-junction nanowires via large-scale low temperature chemical route. This low temperature chemical route is shown to synthesize multi-junction nanostructures without compromising the crystal quality at the interfaces. The final morphology of an optimized multi-junctions nanowire arrays can be demonstrated on various substrates due to substrate independence and low temperature processing. Here, we also follow-up on device demonstrations whereby p-n junction are created by exposure of secondary nanowires to ammonia plasma, converting them to p-type characteristics and also the density modulated multi-junction nanowires were tuned to infiltrate nanoparticles to create a hybrid hierarchically-structured nanowireanoparticles solar cell. The fabrication of hierarchically-structured nanowireanoparticles composites presents an advantageous structure, one that allow nanoparticles to provide large surface areas for the dye adsorption, whilst the nanowires can enhance the light harvesting, electron transport rate, and also the mechanical properties of the films. This work can be of great scientific and commercial interest since the technique employed is of low temperature (< 90 °C) and economical for large-scale solution processing, much valued in today's flexible display and photovoltaic industries. In addition, ZnO nanostructures for gas sensing will be presented.
机译:利用聚合物生长抑制剂层的无掩膜方法,通过大规模的低温化学途径来调节多结纳米线的密度和排列的相互矛盾的参数。该低温化学路线显示出可以合成多结纳米结构,而不会损害界面处的晶体质量。由于基板的独立性和低温处理的原因,可以在各种基板上证明优化的多结纳米线阵列的最终形态。在这里,我们还跟进了设备演示,其中通过将次级纳米线暴露于氨等离子体中来创建pn结,将其转换为p型特征,并且还对密度调制的多结纳米线进行了调整以渗透纳米颗粒,从而分层地创建了杂化体结构的纳米线/纳米粒子太阳能电池。分层结构的纳米线/纳米粒子复合材料的制造呈现出一种有利的结构,该结构允许纳米粒子为染料吸附提供大的表面积,而纳米线可以增强光的收集,电子传输速率以及薄膜的机械性能。 。这项工作具有极大的科学意义和商业意义,因为所采用的技术具有低温(<90°C)且对于大规模溶液处理而言经济实惠,在当今的柔性显示和光伏行业中倍受青睐。此外,将介绍用于气体传感的ZnO纳米结构。

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