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大面积有机光伏材料、溶液制备工艺及长期稳定性的研究进展

Progress in Materials, Solution Processes, and Long-Term Stability for Large-Area Organic Photovoltaics.

作者信息

Park Sungmin, Kim Taehee, Yoon Seongwon, Koh Chang Woo, Woo Han Young, Son Hae Jung

机构信息

Advanced Photovoltaics Research Center, Korea Institute of Science and Technology, Seoul, 02792, Republic of Korea.

Department of Chemistry, Korea University, Seoul, 02841, Republic of Korea.

出版信息

Adv Mater. 2020 Dec;32(51):e2002217. doi: 10.1002/adma.202002217. Epub 2020 Oct 5.

Abstract

Organic solar cells based on bulk heterojunctions (BHJs) are attractive energy-conversion devices that can generate electricity from absorbed sunlight by dissociating excitons and collecting charge carriers. Recent breakthroughs attained by development of nonfullerene acceptors result in significant enhancement in power conversion efficiency (PCEs) exceeding 17%. However, most of researches have focused on pursuing high efficiency of small-area (<1 cm ) unit cells fabricated usually with spin coating. For practical application of organic photovoltaics (OPVs) from lab-scale unit cells to industrial products, it is essential to develop efficient technologies that can extend active area of devices with minimized loss of performance and ensured operational stability. In this progress report, an overview of recent advancements in materials and processing technologies is provided for transitioning from small-area laboratory-scale devices to large-area industrial scale modules. First, development of materials that satisfy requirements of high tolerability in active layer thickness and large-area adaptability is introduced. Second, morphology control using various coating techniques in a large active area is discussed. Third, the recent research progress is also underlined for understanding mechanisms of OPV degradation and studies for improving device long-term stability along with reliable evaluation procedures.

摘要

基于体异质结(BHJ)的有机太阳能电池是一种有吸引力的能量转换装置,它可以通过解离激子和收集电荷载流子,将吸收的太阳光转化为电能。通过开发非富勒烯受体取得的最新突破,使功率转换效率(PCE)显著提高,超过了17%。然而,大多数研究都集中在追求通常采用旋涂法制备的小面积(<1平方厘米)单元电池的高效率上。为了将有机光伏(OPV)从实验室规模的单元电池实际应用于工业产品,开发高效技术至关重要,这些技术可以在将器件有源面积扩大的同时,将性能损失降至最低,并确保操作稳定性。在本进展报告中,概述了从材料和加工技术的最新进展,以便从小面积实验室规模的器件过渡到大面积工业规模的模块。首先,介绍了满足有源层厚度高耐受性和大面积适应性要求的材料的开发。其次,讨论了在大面积有源区域中使用各种涂层技术进行的形貌控制。第三,强调了最近的研究进展,以了解OPV降解的机制以及提高器件长期稳定性的研究以及可靠的评估程序。

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