Solution-Processed Bilayered ZnO Electron Transport Layer for Efficient Inverted Non-Fullerene Organic Solar Cells

Walia Binte Tarique, Md Habibur Rahaman, Shahriyar Safat Dipta, Ashraful Hossain Howlader, Ashraf Uddin
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Abstract

Organic solar cells (OSCs) are becoming increasingly popular in the scientific community because of their many desirable properties. These features include solution processability, low weight, low cost, and the ability to process on a wide scale using roll-to-roll technology. Enhancing the efficiency of photovoltaic systems, particularly high-performance OSCs, requires study into not only material design but also interface engineering. This study demonstrated that two different types of OSCs based on the PTB7-Th:IEICO-4F and PM6:Y6 active layers use a ZnO bilayer electron transport layer (ETL). The ZnO bilayer ETL comprises a ZnO nanoparticle (ZnO NP) and a ZnO layer created from a sol-gel. The effect of incorporating ZnO NPs into the electron transport layer (ETL) was studied; in particular, the effects on the electrical, optical, and morphological properties of the initial ZnO ETL were analyzed. The ability of ZnO films to carry charges is improved by the addition of ZnO nanoparticles (NPs), which increase their conductivity. The bilayer structure had better crystallinity and a smoother film surface than the single-layer sol-gel ZnO ETL. This led to a consistent and strong interfacial connection between the photoactive layer and the electron transport layer (ETL). Therefore, inverted organic solar cells (OSCs) with PTB7-Th:IEICO-4F and PM6:Y6 as photoactive layers exhibit improved power conversion efficiency and other photovoltaic properties when using the bilayer technique.
用于高效反相非富勒烯有机太阳能电池的溶液加工双层氧化锌电子传输层
有机太阳能电池(OSC)由于具有许多理想特性,在科学界越来越受欢迎。这些特性包括溶液可加工性、重量轻、成本低以及能够使用卷对卷技术进行大规模加工。要提高光伏系统,特别是高性能 OSC 的效率,不仅需要研究材料设计,还需要研究界面工程。这项研究表明,基于 PTB7-Th:IEICO-4F 和 PM6:Y6 活性层的两种不同类型的 OSC 使用了氧化锌双层电子传输层 (ETL)。氧化锌双层电子传输层(ETL)由氧化锌纳米粒子(ZnO NP)和由溶胶凝胶生成的氧化锌层组成。研究人员对电子传输层(ETL)中加入 ZnO NP 的效果进行了研究,特别是分析了其对初始 ZnO ETL 的电学、光学和形态学特性的影响。加入氧化锌纳米粒子(NPs)后,氧化锌薄膜携带电荷的能力得到改善,其导电性也得到提高。与单层溶胶凝胶 ZnO ETL 相比,双层结构具有更好的结晶度和更光滑的薄膜表面。这使得光活性层和电子传输层(ETL)之间具有一致且牢固的界面连接。因此,以 PTB7-Th:IEICO-4F 和 PM6:Y6 为光活性层的倒置有机太阳能电池(OSC)在使用双层技术时,显示出更高的功率转换效率和其他光伏特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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