TY - JOUR
T1 - Over 18% Efficiency from Halogen‐Free Solvent‐Processed Polymer Solar Cells Enabled by Asymmetric Small Molecule Acceptors with Fluoro‐Thienyl Extended Terminal
AU - Wu, Jingnan
AU - Sun, Fengbo
AU - Xia, Xinxin
AU - Franco, Leandro R.
AU - Chen, Qiaonan
AU - Fu, Yúang
AU - Ribeiro, Rafael B.
AU - Lu, Xinhui
AU - Araujo, C. Moyses
AU - Wang, Xunchang
AU - Yang, Renqiang
AU - Guo, Xia
AU - Yu, Donghong
AU - Zhang, Maojie
AU - Wang, Ergang
PY - 2025/1/19
Y1 - 2025/1/19
N2 - The potential impact of end-group (EG) in non-fullerene acceptor (NFA) on enabling green solvent-processable polymer solar cells (PSCs) remains underexplored, offering opportunities for advancements in environmentally friendly PSC development. Herein, the EG of 1′,1′-dicyanomethylene-4-fluoro-5-thienyl-3-indanone (IC-FT) is developed by modifying the state-of-the-art of Y6 derivative NFA, BTP-4F, resulting in two novel NFAs, namely BTP-FT and BTP-2FT. Distinctively, this study reveals that it is the noncovalent F···S interaction, other than the commonly believed strong hydrogen bonding of F···H that plays a key role in determining the final molecular conformation, as confirmed by means of 2D NMR study and Gibbs free energy calculations. The asymmetric BTP-FT possesses an upshifted lowest unoccupied molecular orbital level and enhances solubility in toluene. Consequently, it can mitigate phase separation, promote the formation of nanofibrillar morphology, facilitate exciton dissociation, and ultimately enhance the performance of the PSCs, achieving a high open circuit voltage of 0.900 V and a power conversion efficiency (PCE) of 17.56%. Furthermore, the ternary blend PM6:BTP-FT:BTP-4F achieves an enhance PCE of 18.39% in devices processed from toluene. This study offers a novel perspective on NFA design for high-efficiency and eco-friendly processable PSCs by enriching the array of electron-withdrawing EGs on NFA molecules.
AB - The potential impact of end-group (EG) in non-fullerene acceptor (NFA) on enabling green solvent-processable polymer solar cells (PSCs) remains underexplored, offering opportunities for advancements in environmentally friendly PSC development. Herein, the EG of 1′,1′-dicyanomethylene-4-fluoro-5-thienyl-3-indanone (IC-FT) is developed by modifying the state-of-the-art of Y6 derivative NFA, BTP-4F, resulting in two novel NFAs, namely BTP-FT and BTP-2FT. Distinctively, this study reveals that it is the noncovalent F···S interaction, other than the commonly believed strong hydrogen bonding of F···H that plays a key role in determining the final molecular conformation, as confirmed by means of 2D NMR study and Gibbs free energy calculations. The asymmetric BTP-FT possesses an upshifted lowest unoccupied molecular orbital level and enhances solubility in toluene. Consequently, it can mitigate phase separation, promote the formation of nanofibrillar morphology, facilitate exciton dissociation, and ultimately enhance the performance of the PSCs, achieving a high open circuit voltage of 0.900 V and a power conversion efficiency (PCE) of 17.56%. Furthermore, the ternary blend PM6:BTP-FT:BTP-4F achieves an enhance PCE of 18.39% in devices processed from toluene. This study offers a novel perspective on NFA design for high-efficiency and eco-friendly processable PSCs by enriching the array of electron-withdrawing EGs on NFA molecules.
KW - molecular conformation
KW - non-fullerene acceptor
KW - non-halogen solvent
KW - polymer solar cell
KW - power conversion efficiency
UR - http://www.scopus.com/inward/record.url?scp=85215528687&partnerID=8YFLogxK
U2 - 10.1002/adfm.202423137
DO - 10.1002/adfm.202423137
M3 - Journal article
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -