Tethered Trimeric Small‐molecular Acceptors through Aromatic‐core Engineering for Highly Efficient and Thermally Stable Polymer Solar Cells

Author:

Chang Bowen1,Zhang Yaogang2,Zhang Cen1,Zhang Ming1,Wang Qingyuan1,Xu Zheng'ao1,Chen Qi1,Bai Yang1,Fu Hongyuan1,Meng Shixin1,Xue Lingwei3,Kim Seoyoung4,Yang Changduk4,Yi Yuanping2,Zhang Zhi‐Guo1ORCID

Affiliation:

1. State Key Laboratory of Chemical Resource Engineering Beijing Advanced Innovation Center for Soft Matter Science and Engineering Beijing University of Chemical Technology Beijing 100029 China

2. Beijing National Laboratory for Molecular Sciences CAS Key Laboratory of Organic Solids Institute of Chemistry Chinese Academy of Sciences Beijing 100190 China

3. Yaoshan Laboratory Pingdingshan University Pingdingshan Henan 467000 P. R. China

4. Department of Energy Engineering School of Energy and Chemical Engineering Low Dimensional Carbon Materials Center Ulsan National Institute of Science and Technology (UNIST) Ulsan 689-798 South Korea

Abstract

AbstractPolymer solar cells (PSCs) rely on a blend of small molecular acceptors (SMAs) with polymer donors, where thermodynamic relaxation of SMAs poses critical concerns on operational stability. To tackle this issue, tethered SMAs, wherein multiple SMA‐subunits are connected to the aromatic‐core via flexible chains, are proposed. This design aims to an elevated glass transition temperature (Tg) for a dynamical control. However, attaining an elevated Tg value with additional SMA subunits introduces complexity to the molecular packing, posing a significant challenge in realizing both high stability and power conversion efficiency (PCE). In this study, we initiate isomer engineering on the benzene‐carboxylate core and find that meta‐positioned dimeric BDY‐β exhibits more favorable molecular packing compared to its para‐positioned counterpart, BDY‐α. With this encouraging result, we expand our approach by introducing an additional SMA unit onto the aromatic core of BDY‐β, maintaining a meta‐position relative to each SMA unit location in the tethered acceptor. This systematic aromatic‐core engineering results in a star‐shaped C3h‐positioned molecular geometry. The supramolecular interactions of SMA units in the trimer contribute to enhancements in Tg value, crystallinity, and a red‐shifted absorption compared to dimers. These characteristics result in a noteworthy increase in PCE to 18.24 %, coupled with a remarkable short‐circuit current density of 27.06 mA cm−2. More significantly, the trimer‐based devices delivered an excellent thermal stability with over 95 % of their initial efficiency after 1200 h thermal degradation. Our findings underscore the promise and feasibility of tethered trimeric structures in achieving highly ordered aggregation behavior and increased Tg value in PSCs, simultaneously improving in device efficiency and thermal stability.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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