Precisely Controlling the Position of Bromine on the End Group Enables Well‐Regular Polymer Acceptors for All‐Polymer Solar Cells with Efficiencies over 15%

Zhenghui Luo(Shenzhen University), Tao Liu(Hong Kong University of Science and Technology), Ruijie Ma(Hong Kong University of Science and Technology), Yiqun Xiao(Chinese University of Hong Kong), Lingling Zhan(State Key Laboratory of Silicon Materials), Guangye Zhang(Bureau of Plant Industry), Huiliang Sun(Hong Kong University of Science and Technology), Fan Ni(Shenzhen University), Gaoda Chai(Hong Kong University of Science and Technology), Junwei Wang(Southern University of Science and Technology), Cheng Zhong(Wuhan University), Yang Zou(Shenzhen University), Xugang Guo(Southern University of Science and Technology), Xinhui Lu(Chinese University of Hong Kong), Hongzheng Chen(State Key Laboratory of Silicon Materials), He Yan(Hong Kong University of Science and Technology), Chuluo Yang(Shenzhen University)
Advanced Materials
October 29, 2020
Cited by 406

Abstract

Recent advances in the development of polymerized A-D-A-type small-molecule acceptors (SMAs) have promoted the power conversion efficiency (PCE) of all-polymer solar cells (all-PSCs) over 13%. However, the monomer of an SMA typically consists of a mixture of three isomers due to the regio-isomeric brominated end groups (IC-Br(in) and IC-Br(out)). In this work, the two isomeric end groups are successfully separated, the regioisomeric issue is solved, and three polymer acceptors, named PY-IT, PY-OT, and PY-IOT, are developed, where PY-IOT is a random terpolymer with the same ratio of the two acceptors. Interestingly, from PY-OT, PY-IOT to PY-IT, the absorption edge gradually redshifts and electron mobility progressively increases. Theory calculation indicates that the LUMOs are distributed on the entire molecular backbone of PY-IT, contributing to the enhanced electron transport. Consequently, the PM6:PY-IT system achieves an excellent PCE of 15.05%, significantly higher than those for PY-OT (10.04%) and PY-IOT (12.12%). Morphological and device characterization reveals that the highest PCE for the PY-IT-based device is the fruit of enhanced absorption, more balanced charge transport, and favorable morphology. This work demonstrates that the site of polymerization on SMAs strongly affects device performance, offering insights into the development of efficient polymer acceptors for all-PSCs.


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