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Nano-engineering of hybrid organic heterojunctions with carbon nanotubes to improve photovoltaic performance

机译:具有碳纳米管的杂化有机异质结的纳米工程,以提高光伏性能

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摘要

Organic-inorganic hybrid photovoltaics are beginning to show significant promise as a low cost highly efficient route towards renewable energy generation. Of the hybrid architectures available, carbon nanotube incorporated organic photovoltaics is considered to be among the most promising. Herein, the optical and electronic effects of localizing multiwalled carbon nanotubes in the donor polymer is investigated in comparison to its incorporation into the bulk heterojunction architecture (triple heterojunction scheme) through photoluminescence quenching and dark diode characteristics analysis. A significant improvement in photoluminescence quenching is observed when the nanotubes are localized in the donor polymer where the active layer is formed through a sequential deposition route in comparison to the triple heterojunction scheme. However, the former architecture also leads to a higher recombination of carriers due to the introduction of trap states as observed through space charge limited conduction analysis. In comparison, the triple heterojunction scheme shows a lower dark current and hence a significantly improved photovoltaic device performance (3.8% in comparison to 2.6% for the sequentially deposited architecture). This indicates that the formation of the triple heterojunction is the more ideal scheme for improving device performances in organic-inorganic hybrid architectures.
机译:作为一种低成本,高效的可再生能源生产途径,有机-无机混合光伏技术开始显示出巨大的希望。在可用的混合架构中,碳纳米管结合的有机光伏被认为是最有前途的。在此,与通过光致发光猝灭和暗二极管特性分析将其掺入体异质结结构(三异质结方案)相比,研究了将多壁碳纳米管定位在供体聚合物中的光学和电子效应。当纳米管位于供体聚合物中时,与三重异质结方案相比,当纳米管通过顺序沉积路径形成活性层时,观察到光致发光猝灭的显着改善。然而,由于通过空间电荷受限传导分析观察到的陷阱态的引入,前一种架构还导致载流子的重组更高。相比之下,三异质结方案显示出较低的暗电流,因此显着提高了光伏器件的性能(3.8%,而顺序沉积的体系结构为2.6%)。这表明三异质结的形成是用于改善有机-无机混合架构中器件性能的更理想方案。

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