High performance organic solar cell enabled by manipulating the exciton dissociation and charge transfer via dielectric engineering

Y Yanan Wei (College of Materials Science and Optoelectronic Technology, Center of Materials Science and Optoelectronics Engineering, CAS Center for Excellence in Topological Quantum Computation, CAS Key Laboratory of Vacuum Physics) X Xiaobin Gu (College of Materials Science and Optoelectronic Technology Center of Materials Science and Optoelectronics Engineering, CAS Center for Excellence in Topological Quantum Computation, CAS Key Laboratory of Vacuum Physic) X Xue Shi M Meng Zhang J Jikai Lv X Xubing Bai L Lixia Wang (Huairou Research Center of Institute of Chemistry, Chinese Academy of Sciences) X Xin Zhang X Xiangyue Meng J Jianqi Zhang (Key Laboratory of Nanosystem and Hierarchical Fabrication) X Xiaotao Hao Q Qian Peng (State Key Laboratory of Elemento-Organic Chemistry and Tianjin Key Laboratory of Biosensing and Molecular Recognition College of Chemistry, Nankai University, 94 Weijin Road, Tianjin 300071, China) Y Yunhao Cai H Hui Huang (Center of Basic Molecular Science (CBMS), Department of Chemistry)

Abstract

Abstract As core processes determining the power conversion efficiency (PCE) of organic solar cells (OSCs), exciton dissociation and charge transfer are fundamentally restricted by the low intrinsic dielectric constant of organic semiconductors. Herein, two dielectric regulators (Drs) named Dr-1 and Dr-2 are judiciously designed with different molecular dipole moments to conduct research on dielectric engineering. The incorporation of S···F noncovalent conformational locks (NoCLs) endows Dr-2 with an extended π-conjugated backbone, improved molecular polarizability, reinforced charge delocalization and a larger dipole moment than Dr-1. Thus, Dr-2-modified OSCs based on the D18:L8-BO system achieve a PCE of 20.85%, surpassing the 20.13% of Dr-1-treated counterparts. Enhanced efficiencies across diverse donor-acceptor systems confirm the universal applicability of this strategy. Furthermore, 300 nm-thick OSCs incorporated with Dr-2 deliver a record-high PCE of 19.56%. This work provides a strategy for designing high-performance dielectric regulators via tuning molecular dipole moment and planarity simultaneously, thereby achieving high-efficiency OSCs.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 16, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (14)

Y

Yanan Wei

College of Materials Science and Optoelectronic Technology, Center of Materials Science and Optoelectronics Engineering, CAS Center for Excellence in Topological Quantum Computation, CAS Key Laboratory of Vacuum Physics

X

Xiaobin Gu

College of Materials Science and Optoelectronic Technology Center of Materials Science and Optoelectronics Engineering, CAS Center for Excellence in Topological Quantum Computation, CAS Key Laboratory of Vacuum Physic

X

Xue Shi

M

Meng Zhang

J

Jikai Lv

X

Xubing Bai

L

Lixia Wang

Huairou Research Center of Institute of Chemistry, Chinese Academy of Sciences

X

Xin Zhang

X

Xiangyue Meng

J

Jianqi Zhang

Key Laboratory of Nanosystem and Hierarchical Fabrication

X

Xiaotao Hao

Q

Qian Peng

State Key Laboratory of Elemento-Organic Chemistry and Tianjin Key Laboratory of Biosensing and Molecular Recognition College of Chemistry, Nankai University, 94 Weijin Road, Tianjin 300071, China

Y

Yunhao Cai

H

Hui Huang

Center of Basic Molecular Science (CBMS), Department of Chemistry