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High efficiency nanostructured electrodes for organic optoelectronics

High efficiency nanostructured electrodes for organic optoelectronics
用于有机光电子学的高效纳米结构电极
批准号:
436100-2013
负责人:
Turak, Ayse
金额:
$1.68万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2016
资助国家:
加拿大
项目状态:
已结题
起止时间:
2016-01-01 至 2017-12-31

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中文摘要
翻译
有机光伏(OPV)代表着一种新兴的潜在替代品,可以替代昂贵而僵化的无机光伏技术。为了让人们负担得起光伏,每千瓦峰的价格需要低于0.3美元/平方米。由于成本较低,有机技术在经济上可行之前,只需在性能效率方面取得适度的进展。一般来说,器件的性能和稳定性取决于高功能(即氧化铟锡)和低功能(即铝)电极的电极结构。加入各种中间层是提高器件效率和运行稳定性以达到10-10目标(效率10%-10年寿命)的主要设计策略。环境处理技术是生产廉价设备的关键。因此,本研究计划的主要针对性创新是利用非真空技术,特别是反胶束沉积纳米粒子技术,实现有机器件可行的结构电极的制备。这种方法将提供一种系统的方法来生产周期性结构,同时消除热蒸发的需要。在电极上引入纳米颗粒阵列可以改变表面功函数和形貌,从而导致更高性能的器件。通过使用反胶束方法,通过利用调节电子结构和形态的能力,可以将为夹层选择的材料的作用与分散性和粗糙度分离。关键的第一步是用可调节的分散度制造和表征每个电极,然后用新电极生产二极管,并以传统生产的电极作为基准,以提高效率和寿命。预期的结果有两个方面。一个目标是建立可行的替代传统生产的电极,具有可控和可调的界面粗糙度和周期性。第二个目标是阐明纳米粒子分散在两个电极界面上改善器件性能和稳定性的机理,以及界面粗糙度对器件性能的影响。
英文摘要
Organic photovoltaics (OPVs) represent an emerging potential alternative to costly and inflexible inorganic PV technologies. To make PV affordable, the price per kilowatt-peak needs to be below $0.3/m2. Due to their low cost, organic technologies need to make only modest gains in performance efficiency before becoming economically viable. In general, device performance and stability has been observed to depend on the electrode structure of both the high (i.e. indium tin oxide) and low function (i.e. Al) electrode. Incorporation of various interlayers is a major design strategy for improving the device efficiency and operational stability to reach 10-10 targets (10% efficiency-10 year lifetime). Ambient processing techniques are the key to producing inexpensive devices. Therefore, the main targeted innovation of this research program is to realize the production of viable structured electrodes for organic devices using non-vacuum techniques, in particular reverse micelle deposition of nanoparticles. Such an approach would provide a systematic means of producing periodic structures, while simultaneously eliminating the need for thermal evaporation. The introduction of nanoparticle arrays at the electrodes has been seen to modify the surface work function and the morphology, leading to higher performance devices. By using the reverse micelle approach, it will be possible to uncouple the role of the material chosen for the interlayer from the dispersion and roughness, by taking advantage of the ability to tune the electronic structure and morphology. The essential first step is producing and characterizing each of the electrodes, with tunable dispersions, then producing diodes with the new electrodes and benchmarking them with the traditionally produced electrodes for both efficiency and lifetime. The desired outcomes are two fold. One goal is to establish viable alternatives to traditionally produced electrodes, with controllable and tuneable interface roughness and periodicity. A second goal is to clarify the mechanisms for the improvement of device performance and stability with nanoparticle dispersions at both electrode interfaces, and the impact of interface roughness on the device properties.
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