Cold‐Aging and Solvent Vapor Mediated Aggregation Control toward 18% Efficiency Binary Organic Solar Cells

Chuanhang Guo(Wuhan University of Technology), Donghui Li(Wuhan University of Technology), Liang Wang(Wuhan University of Technology), Baocai Du(Wuhan University of Technology), Zhi‐Xi Liu(State Key Laboratory of Silicon Materials), Ziqiu Shen(State Key Laboratory of Silicon Materials), Pang Wang(Wuhan University of Technology), Xue Zhang(Wuhan University of Technology), Jinlong Cai(Wuhan University of Technology), Shili Cheng(Wuhan University of Technology), Cong Yu(Wuhan University of Technology), Hui Wang(Wuhan University of Technology), Dan Liŭ(Wuhan University of Technology), Chang‐Zhi Li(State Key Laboratory of Silicon Materials), Tao Wang(Wuhan University of Technology)
Advanced Energy Materials
August 28, 2021
Cited by 90

Abstract

Abstract The molecular ordering and pre‐aggregation of photovoltaic materials in solution can significantly affect the nanoscale morphology in solid photoactive layers, and play a vital role in determining the power conversion efficiency (PCE) of organic solar cells (OSCs). Herein, a cold‐aging strategy is reported to mediate the pre‐aggregation of PM6 polymer in solution through a disorder‐order transition, which leads to dense and fine PM6 aggregates with enhanced π−π stacking in its blend thin films with either fused‐ring and non‐fused‐ring non‐fullerene acceptors (NFAs) including Y6‐BO, N3, IT‐4F, and PTIC. The fine aggregates of PM6 and slightly enlarged NFA domains improve the continuous networks with enhanced and balanced charge mobility. The resulting OSCs all demonstrate enhanced PCEs compared to their counterparts without any cold‐aging treatments, with PM6:Y6‐BO OSC being most effective from 16.6% to 17.7%, demonstrating the universality of this approach. This can be further optimized upon casting of the cold‐aging solution with the presence of solvent vapor, resulting in a champion PCE of 18.0% for PM6:Y6‐BO OSC, which is the highest PCE of this OSC reported in the literature. This work provides a rational guide for optimizing non‐fullerene OSCs via aggregation control before and during the solution casting process.


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