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用于高效热稳定有机太阳能电池的基于苯并三唑的非稠环受体。

Benzotriazole-Based Nonfused Ring Acceptors for Efficient and Thermally Stable Organic Solar Cells.

作者信息

Han Daehee, Lim Chulhee, Phan Tan Ngoc-Lan, Kim Youngkwon, Kim Bumjoon J

机构信息

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

出版信息

Macromol Rapid Commun. 2022 Nov;43(22):e2200530. doi: 10.1002/marc.202200530. Epub 2022 Aug 5.

DOI:10.1002/marc.202200530
PMID:35866445
Abstract

Nonfused ring acceptors (NFRAs) have attracted significant attention for nonfullerene organic solar cells (OSCs) owing to their chemical tunability and facile synthesis. In this study, a benzotriazole-based NFRA with chlorinated end groups (Triazole-4Cl) is developed to realize highly efficient and thermally stable NFRA-based OSCs; an analogous NFRA with nonchlorinated end groups (Triazole-H) is synthesized for comparison. Triazole-4Cl film exhibits the high-order packing structure and the near-infrared absorption capability, which are advantageous in charge transport and light harvesting of the resulting OSCs. In particular, the strong crystalline behavior of Triazole-4Cl results in enhanced self-aggregation, leading to high charge carrier mobility. Owing to these properties, a PBDB-T (polymer donor):Triazole-4Cl OSC demonstrates a high short-circuit current, fill factor, and power conversion efficiency (PCE = 10.46%), outperforming a PBDB-T:Triazole-H OSC (PCE = 7.65%). In addition, the thermal stability of a PBDB-T:Triazole-4Cl OSC at an elevated temperature of 120 °C exceeds that of a PBDB-T:Triazole-H OSC. This is mainly attributed to the significantly higher cold crystallization temperature of Triazole-4Cl (205.9 °C). This work provides useful guidelines for the design of NFRAs to achieve efficient and thermally stable NFRA-based OSCs.

摘要

非稠环受体(NFRAs)因其化学可调控性和易于合成,在非富勒烯有机太阳能电池(OSCs)领域引起了广泛关注。在本研究中,开发了一种带有氯化端基的基于苯并三唑的NFRA(三唑-4Cl),以实现高效且热稳定的基于NFRA的OSCs;合成了一种带有非氯化端基的类似NFRA(三唑-H)用于对比。三唑-4Cl薄膜呈现出高阶堆积结构和近红外吸收能力,这对所得OSCs的电荷传输和光捕获有利。特别地,三唑-4Cl的强结晶行为导致自聚集增强,从而产生高电荷载流子迁移率。由于这些特性,PBDB-T(聚合物供体):三唑-4Cl OSC表现出高短路电流、填充因子和功率转换效率(PCE = 10.46%),优于PBDB-T:三唑-H OSC(PCE = 7.65%)。此外,PBDB-T:三唑-4Cl OSC在120℃高温下的热稳定性超过了PBDB-T:三唑-H OSC。这主要归因于三唑-4Cl显著更高的冷结晶温度(205.9℃)。这项工作为设计NFRA以实现高效且热稳定的基于NFRA的OSCs提供了有用的指导。

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