一种精细的双光纤网络形态作为高性能钙钛矿太阳能微型组件的可打印空穴传输层

IF 13.7 Q1 CHEMISTRY, MULTIDISCIPLINARY
Zhihui Yao, Qiyuan Xia, Jin Li, Xiangchuan Meng, Zengqi Huang, Muhammad Bilal Khan Niazi, Shaohua Zhang, Xiaotian Hu, Yiwang Chen
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引用次数: 0

摘要

在当代钙钛矿太阳能电池(PSCs)的制备中,空穴传输层(HTLs)材料的普遍问题往往与大面积沉积技术不相容。随着面积的增加,这将导致HTLs的制备不均匀,这将大大降低器件在模块级的效率和可靠性。为了解决这一重大挑战,我们提出了一种基于聚合物HTLs的双光纤网络结构策略。该策略涉及使用有机太阳能电池聚合物供体材料(PM6)和聚(3-己基噻吩)(P3HT),它们自发地交织成微米级的纤维晶体,以建立有效的载流子运输通道。这种独特的结构不仅加速了电荷的提取,而且利用了聚合物的固有优势,例如优异的印刷性和均匀的薄膜形成,同时增强了钙钛矿层的保护。所得器件的VOC为1.18 V,冠军PCE为24.90%,高于原始器件(PCE为22.87%)。此外,由于改善了打印特性,叶片涂层制备的psm在100 cm2孔径范围内也显示出15.15%的高PCE。此外,该策略显著提高了器件的操作稳定性、热稳定性和湿度稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Refined Dual-Fiber Network Morphology as Printable Hole Transport Layers for High-Performance Perovskite Solar Mini-Modules

A Refined Dual-Fiber Network Morphology as Printable Hole Transport Layers for High-Performance Perovskite Solar Mini-Modules

In the contemporary preparation of perovskite solar cells (PSCs), the prevalent issue of hole transport layers (HTLs) materials is frequently incompatible with large-area deposition techniques. As the area increases, this results in nonuniform preparation of the HTLs, which significantly reduces the efficiency and reliability of the device at the module level. To tackle this significant challenge, we propose a strategy for a dual-fiber network structure based on polymer HTLs. This strategy involves the use of organic solar cell polymer donor material (PM6) and poly(3-hexylthiophene) (P3HT), which are spontaneously interwoven into micron-sized fiber crystals to establish efficient carrier transport channels. This unique structure not only accelerates charge extraction but also takes advantage of the inherent benefits of polymers, such as excellent printability and homogeneous film formation while enhancing the protection of the perovskite layers. The resulting devices demonstrate a VOC of 1.18 V and a champion PCE of 24.90%, which is higher than the pristine devices (the PCE is 22.87%). Moreover, due to the improved printing characteristics, the PSMs prepared by blade-coating also demonstrate a high PCE of 15.15% within an aperture area of 100 cm2. Additionally, this strategy significantly improves the operational stability, thermal stability, and humidity stability of the devices.

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来源期刊
CiteScore
17.40
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