Isomerization Engineering of Solid Additives Enables Highly Efficient Organic Solar Cells via Manipulating Molecular Stacking and Aggregation of Active Layer

Author:

Miao Yawei1,Sun Yanna1,Zou Wentao1,Zhang Xu1,Kan Yuanyuan12,Zhang Wenqing3,Jiang Xinyue1,Wang Xunchang4,Yang Renqiang4,Hao Xiaotao3,Geng Longlong5,Xu Huajun1,Gao Ke1ORCID

Affiliation:

1. Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion Institute of Frontier Chemistry School of Chemistry and Chemical Engineering Shandong University Qingdao 266237 P. R. China

2. Jiangxi Provincial Key Laboratory of Functional Crystalline Materials Chemistry Jiangxi University of Science and Technology Ganzhou 341000 P.R. China

3. School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan 250100 P. R. China

4. Key Laboratory of Optoelectronic Chemical Materials and Devices (Ministry of Education) School of Optoelectronic Materials & Technology Jianghan University Wuhan 430056 P. R. China

5. Shandong Provincial Key Laboratory of Monocrystalline Silicon Semiconductor Materials and Technology College of Chemistry and Chemical Engineering Dezhou University Dezhou 253023 P. R. China

Abstract

AbstractMorphology control is crucial in achieving high‐performance organic solar cells (OSCs) and remains a major challenge in the field of OSC. Solid additive is an effective strategy to fine‐tune morphology, however, the mechanism underlying isomeric solid additives on blend morphology and OSC performance is still vague and urgently requires further investigation. Herein, two solid additives based on pyridazine or pyrimidine as core units, M1 and M2, are designed and synthesized to explore working mechanism of the isomeric solid additives in OSCs. The smaller steric hindrance and larger dipole moment facilitate better π–π stacking and aggregation in M1‐based active layer. The M1‐treated all‐small‐molecule OSCs (ASM OSCs) obtain an impressive efficiency of 17.57%, ranking among the highest values for binary ASM OSCs, with 16.70% for M2‐treated counterparts. Moreover, it is imperative to investigate whether the isomerization engineering of solid additives works in state‐of‐the‐art polymer OSCs. M1‐treated D18‐Cl:PM6:L8‐BO‐based devices achieve an exceptional efficiency of 19.70% (certified as 19.34%), among the highest values for OSCs. The work provides deep insights into the design of solid additives and clarifies the potential working mechanism for optimizing the morphology and device performance through isomerization engineering of solid additives.

Funder

National Key Research and Development Program of China

China Postdoctoral Science Foundation

Natural Science Foundation of Shandong Province

National Natural Science Foundation of China

Publisher

Wiley

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