中文版 | English
Title

Crystallography, Packing Mode, and Aggregation State of Chlorinated Isomers for Efficient Organic Solar Cells

Author
Corresponding AuthorFeng He
Joint first authorXue Lai; Zi-Yi Chen
Publication Years
2022-05-25
DOI
Source Title
ISSN
2096-5745
Pages1-12
Abstract

Revealing the molecular packing, intermolecular interactions, and aggregation behaviors in the nanocrystalline bulk heterojunction (BHJ) domains undertake the tasks for future materials design for efficient solar cells, especially in understanding the structure–property relationship of isomeric non-fullerene acceptors (NFAs). Theoretical calculations reveal that 2ClIC-βδ, with β- and δ-chlorine-substituted terminal groups, achieves a relatively higher dipole moment for enhanced intermolecular interactions. More importantly, when comparing the single-crystal X-ray diffraction patterns of three isomeric NFAs, BTIC-BO4Cl-βδ, BTIC-BO4Cl-βγ, and BTIC-BO4Cl, the synergistic effect of chlorine atoms at the β- and δ-positions endows BTIC-BO4Cl-βδ better molecular planarity with a dihedral angle of 1.14°. In turn, this creates the shortest π∙∙∙π distance (3.28 Å) and smallest binding energies (−51.66 kcal mol−1 ) of the three NFAs, resulting in the tightest three-dimensional network packing structure with a framework of Lx =14.0 Å and Ly =13.6 Å. Such a structure has multiple intermolecular interactions for better charge transfer. However, the chlorine atom at the γ-position in the other two isomers contributes to non-intermolecular interactions with subordinate packing arrangements. Subsequently, the red-shifted UV-absorption and higher electron mobility observed in neat films of BTIC-BO4Cl-βδ agree well with its more ordered crystallinity. This leads to a more suitable fiber-like phase separation in the corresponding active blend, ultimately improving the device performance with superior charge transport. As a result, the highest power conversion efficiency of 17.04% with a current density of 26.07 mA cm−2 was obtained with the BTIC-BO4Cl-βδ-based device. The carrier dynamics test and grazing incidence wide-angle X-ray scattering measurement indicate that the packing arrangement of molecules in the nanocrystalline BHJ domains is consistent with their crystallinity. This work investigates the structure–property differences in three acceptors and emphasizes the effect of isomeric chlorine substitution, which suggests that changes in the crystal packing arrangement, especially the size of the framework, have a considerable influence on charge carrier transport and ultimately are reflected on the device efficiency elevation.

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Language
English
SUSTech Authorship
First ; Corresponding
Publisher
Data Source
人工提交
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/416439
DepartmentDepartment of Chemistry
深圳格拉布斯研究院
Affiliation
1.Department of Chemistry, Shenzhen Grubbs Institute, Southern University of Science and Technology, Shenzhen 518055
2.School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001
3.GuangdongProvincial Key Laboratory of Catalysis, Southern University of Science and Technology, Shenzhen 518055
First Author AffilicationDepartment of Chemistry;  Shenzhen Grubbs Institute
Corresponding Author AffilicationDepartment of Chemistry;  Shenzhen Grubbs Institute;  Southern University of Science and Technology
First Author's First AffilicationDepartment of Chemistry;  Shenzhen Grubbs Institute
Recommended Citation
GB/T 7714
Hanjian Lai,Xue Lai,Zi-Yi Chen,et al. Crystallography, Packing Mode, and Aggregation State of Chlorinated Isomers for Efficient Organic Solar Cells[J]. CCS Chemistry,2022:1-12.
APA
Hanjian Lai.,Xue Lai.,Zi-Yi Chen.,Yulin Zhu.,Hengtao Wang.,...&Feng He.(2022).Crystallography, Packing Mode, and Aggregation State of Chlorinated Isomers for Efficient Organic Solar Cells.CCS Chemistry,1-12.
MLA
Hanjian Lai,et al."Crystallography, Packing Mode, and Aggregation State of Chlorinated Isomers for Efficient Organic Solar Cells".CCS Chemistry (2022):1-12.
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