TY - JOUR
T1 - Facilely full-end-capping engineering promotes high-performance organic solar cells with simultaneously improved efficiency and stability
AU - Zhang, Youhui
AU - Deng, Jiawei
AU - Mao, Qilong
AU - Young Jeong, Sang
AU - Huang, Xuexiang
AU - Zhang, Lifu
AU - Lee, Byongkyu
AU - Huang, Bin
AU - Young Woo, Han
AU - Yang, Changduk
AU - Xu, Junying
AU - Wu, Feiyan
AU - Cao, Qian Yong
AU - Chen, Lie
N1 - Funding Information:
The author thanks for the support from the National Natural Science Foundation of China (NSFC) (51973087, 52173170 and 21962011), Thousand Talents Plan of Jiangxi Province (jxsq2019201004) and Natural Science Foundation of Jiangxi province (20212ACB203010).
Publisher Copyright:
© 2023
PY - 2023/2/1
Y1 - 2023/2/1
N2 - Main-chain construction and side-chain modification are general strategies to design polymer donors for organic solar cell (OSCs), but they always suffer from deliberate molecular design and tedious synthesis. Here, we employ full-end-capping engineering, a facile and versatile strategy to boost both efficiency and stability for non-fullerene OSCs. A series of full-end-capped polymer donors are obtained by a simple end-capping reaction right after the polymerization in one-pot. It is found that the end-capping groups not only completely remove the unreacted terminal defects in the polymer chains, but also well-manipulate the molecular orientation, film-forming process and resulting morphology, optimize the charge dynamics, and reduce non-radiative energy loss. The device with full-end-capped PM6-T:Y6-based obtains an impressive efficiency of 17.11%, showing all-over improved device parameters and long-term stability than unend-capped PM6:Y6-based device (15.96%). Notably, PM6-T:BTP-eC9-based device reaches a efficacy of 18.45%, among the highest performance of BTP-eC9-based devices.
AB - Main-chain construction and side-chain modification are general strategies to design polymer donors for organic solar cell (OSCs), but they always suffer from deliberate molecular design and tedious synthesis. Here, we employ full-end-capping engineering, a facile and versatile strategy to boost both efficiency and stability for non-fullerene OSCs. A series of full-end-capped polymer donors are obtained by a simple end-capping reaction right after the polymerization in one-pot. It is found that the end-capping groups not only completely remove the unreacted terminal defects in the polymer chains, but also well-manipulate the molecular orientation, film-forming process and resulting morphology, optimize the charge dynamics, and reduce non-radiative energy loss. The device with full-end-capped PM6-T:Y6-based obtains an impressive efficiency of 17.11%, showing all-over improved device parameters and long-term stability than unend-capped PM6:Y6-based device (15.96%). Notably, PM6-T:BTP-eC9-based device reaches a efficacy of 18.45%, among the highest performance of BTP-eC9-based devices.
KW - Efficiency
KW - Full-end-capping engineering
KW - Organic solar cells
KW - Stability
UR - http://www.scopus.com/inward/record.url?scp=85146080154&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2023.141343
DO - 10.1016/j.cej.2023.141343
M3 - Article
AN - SCOPUS:85146080154
SN - 1385-8947
VL - 457
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 141343
ER -