Manipulating Alkyl Inner Side Chain of Acceptor for Efficient As‐Cast Organic Solar Cells

Author:

Zhang Bao1,Jiang Mengyun1,Mao Peng1,Wang Shanshan2,Gui Ruohua3,Wang Yingqi1,Woo Han Young4,Yin Hang3,Wang Jin‐Liang1,An Qiaoshi1ORCID

Affiliation:

1. Key Laboratory of Cluster Science of Ministry of Education Beijing Key Laboratory of Photoelectric/Electrophotonic Conversion Materials School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 China

2. Analysis & Testing Center Beijing Institute of Technology Beijing 10081 China

3. School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan 250100 China

4. Department of Chemistry Korea University Seoul 136–713 Republic of Korea

Abstract

AbstractAs‐cast organic solar cells (OSCs) possess tremendous potential for low‐cost commercial applications. Herein, five small‐molecule acceptors (A1A5) are designed and synthesized by selectively and elaborately extending the alkyl inner side chain flanking on the pyrrole motif to prepare efficient as‐cast devices. As the extension of the alkyl chain, the absorption spectra of the films are gradually blue‐shifted from A1 to A5 along with slightly uplifted lowest unoccupied molecular orbital energy levels, which is conducive for optimizing the trade‐off between short‐circuit current density and open‐circuit voltage of the devices. Moreover, a longer alkyl chain improves compatibility between the acceptor and donor. The in situ technique clarifies that good compatibility will prolong molecular assembly time and assist in the preferential formation of the donor phase, where the acceptor precipitates in the framework formed by the donor. The corresponding film‐formation dynamics facilitate the realization of favorable film morphology with a suitable fibrillar structure, molecular stacking, and vertical phase separation, resulting in an incremental fill factor from A1 to A5‐based devices. Consequently, the A3‐based as‐cast OSCs achieve a top‐ranked efficiency of 18.29%. This work proposes an ingenious strategy to manipulate intermolecular interactions and control the film‐formation process for constructing high‐performance as‐cast devices.

Funder

Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Publisher

Wiley

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