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Thin Film Solar Cells Using ZnO Nanowires, Organic Semiconductors and Quantum Dots

机译:使用ZnO纳米线,有机半导体和量子点的薄膜太阳能电池

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摘要

A thin film organic/ inorganic hybrid solar cell was fabricated by incorporating ZnO nanowires, n- and p-type organic semiconductors and inorganic quantum dots. The basic cell design involved the electrodeposition of ZnO nanowires grown on a substrate coated with a transparent conductive oxide. The ZnO nanowires were coated with a thin layer of an organic n-type material, followed by a deposition of inorganic quantum dots. A p-type polymer layer was subsequently deposited and the sample was then contacted with gold to form a quantum dot layer sandwiched between a p-n junction of organic conductive materials.Various materials and processing methods were adjusted, using I-V characteristics, photovoltage and/ or photocurrent measurements to determine the performance of the cell. Each constituent material in the basic device design was evaluated in terms of its contribution to the sample characteristics. A variety of deposition techniques were investigated to obtain homogeneous layers. Different annealing procedures were explored with the intent of balancing the time and temperatures required for electrical activation with material constraints such as tendency towards oxidation and low melting points. The effect of time on the sample characteristics was also observed. The evaluation primarily includes data for samples that led to design modifications aimed at improving both electrical properties and quantum efficiencies.This research led to the development of a hybrid solar cell sensitized by the addition of quantum dots. The organic semiconductors were used to form a p-n junction, and the p-type polymer also served as an active absorber layer. The quantum dots were used as the inorganic absorber fayer, and the results show that the range of optical absorption in the cell can be modified by adjusting particle size. In addition, the ZnO nanowires appear to improve charge transfer, when used with materials that have favorable band offsets.
机译:通过结合ZnO纳米线,n型和p型有机半导体以及无机量子点来制造薄膜有机/无机混合太阳能电池。基本的电池设计涉及在镀有透明导电氧化物的基板上生长的ZnO纳米线的电沉积。 ZnO纳米线涂有有机n型材料的薄层,然后沉积无机量子点。随后沉积p型聚合物层,然后使样品与金接触以形成夹在有机导电材料pn结之间的量子点层。使用IV特性,光电压和/或光电流调整了各种材料和加工方法测量以确定电池的性能。基本设备设计中的每种构成材料均根据其对样品特性的贡献进行了评估。研究了各种沉积技术以获得均匀的层。为了平衡电激活所需的时间和温度与材料限制(例如氧化趋势和低熔点)之间的平衡,探索了不同的退火程序。还观察到时间对样品特性的影响。评估主要包括样品数据,这些数据导致设计改进,旨在同时改善电性能和量子效率。这项研究导致开发了通过添加量子点敏化的混合太阳能电池。有机半导体用于形成p-n结,p型聚合物也用作有源吸收层。量子点被用作无机吸收层,结果表明,通过调节粒径可以改变电池中光吸收的范围。另外,当与具有良好带隙的材料一起使用时,ZnO纳米线似乎可以改善电荷转移。

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    VanSant Kaitlyn;

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  • 年度 2007
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