BN-Bond-Embedded Triplet Terpolymers with Small Singlet-Triplet Energy Gaps for Suppressing Non-Radiative Recombination and Improving Blend Morphology in Organic Solar Cells.

Pang, Bo; Liao, Chentong; Xu, Xiaopeng; Peng, Shaoqian; Xia, Jianlong; Guo, Yuanyuan; Xie, Yuan; Chen, Yuting et al. · Adv Mater · 2023

basic_science · Level V

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Abstract

Suppressing the photon energy loss (E<sub>loss</sub> ), especially the non-radiative loss, is of importance to further improve the device performance of organic solar cells (OSCs). However, typical π-conjugated semiconductors possess a large singlet-triplet energy gap (ΔE<sub>ST</sub> ), leading to a lower triplet state than charge transfer state and contributing to a non-radiative loss channel of the photocurrent by the triplet state. Herein, a series of triplet polymer donors are developed by introducing a BNIDT block into the PM6 polymer backbone. The high electron affinity of BNIDT and the opposite resonance effect of the BN bond in BNIDT results in a lowered highest occupied molecular orbital (HOMO) and a largely reduced ΔE<sub>ST</sub> . Moreover, the morphology of the active blends is also optimized by fine-tuning the BNIDT content. Therefore, non-radiative recombination via the terminal triplet loss channels and morphology traps is effectively suppressed. The PNB-3 (with 3% BNIDT):L8-BO device exhibits both small ΔE<sub>ST</sub> and optimized morphology, favoring more efficient charge transfer and transport. Finally, the simultaneously enhanced V<sub>oc</sub> of 0.907 V, J<sub>sc</sub> of 26.59 mA cm<sup>-2</sup> , and FF of 78.86% contribute to a champion PCE of 19.02%. Therefore, introducing BN bonds into benchmark polymers is a possible avenue toward higher-performance of OSCs.