中文版 | English
Title

Backbone Tuning Enhances the Solution Aggregation to Refine Fibrillization Network Morphology for Efficient All-Chlorinated Polymer Donor

Author
Corresponding AuthorTian,Leilei; He,Feng
Publication Years
2023
DOI
Source Title
EISSN
2639-4979
Volume5Issue:9Pages:2369-2376
Abstract
An ideal nanoscale interpenetrating network morphology that is formed spontaneously upon a prepared active layer film is the key to efficient exciton dissociation and charge transport. Here, a new strategy is described for optimization of morphology by enhancing polymer solution aggregation ability to effectively improve device performance. Polymers PBDQx-Cl, PBDQx-TCl, and PBDQx-2TCl were designed and synthesized systematically by tuning the polymer backbones. Structural manipulation has been found to have a profound effect on the regulation of electronic structure and solution aggregation behavior. Compared with PBDQx-Cl and PBDQx-TCl, PBDQx-2TCl exhibits enhanced solution aggregation ability and contributes to a fibrous phase separation in primitive pure film morphology. After blending with BTP-eC9, evolution of a nanoscale fibrillization interpenetrating network morphology is gradually demonstrated, in which the phase separation and microstructure form are collectively refined, which can provide more interface regions and charge transport channels. The resulting PBDQx-2TCl:BTP-eC9 micromorphologically meets the requirements for efficient exciton splitting, charge transfer, and decreased recombination loss. Thus, among the three polymers, the device based on PBDQx-2TCl:BTP-eC9 shows the highest PCE of 16.17% with superior J of 26.49 mA cm and FF of 74.28%. These results demonstrate that the well-refined fibrillar network morphology can be achieved by adjusting the aggregation ability of a polymer solution. This in turn promotes a deeper understanding of the relationships between micromorphology and solution aggregation behavior.
URL[Source Record]
Indexed By
Language
English
SUSTech Authorship
First ; Corresponding
Funding Project
National Natural Science Foundation of China["22225504","51973089","21975115"] ; Shenzhen Fundamental Research Program["JCYJ20200109140801751","JCYJ20210324120010028"] ; Shenzhen Science and Technology Innovation Commission[KQTD20170810111314625] ; Guangdong Provincial Key Laboratory of Catalysis[2020B121201002]
WOS Research Area
Materials Science
WOS Subject
Materials Science, Multidisciplinary
WOS Accession No
WOS:001041650200001
Publisher
Scopus EID
2-s2.0-85168480915
Data Source
Scopus
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/560129
DepartmentDepartment of Chemistry
深圳格拉布斯研究院
工学院_材料科学与工程系
Affiliation
1.Shenzhen Grubbs Institute and Department of Chemistry,Southern University of Science and Technology,Shenzhen,518055,China
2.Department of Materials Science and Engineering,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China
3.Guangdong Provincial Key Laboratory of Catalysis,Southern University of Science and Technology,Shenzhen,518055,China
First Author AffilicationDepartment of Chemistry;  Shenzhen Grubbs Institute
Corresponding Author AffilicationDepartment of Materials Science and Engineering;  Department 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
Pu,Mingrui,Lai,Xue,Li,Yan,et al. Backbone Tuning Enhances the Solution Aggregation to Refine Fibrillization Network Morphology for Efficient All-Chlorinated Polymer Donor[J]. ACS Materials Letters,2023,5(9):2369-2376.
APA
Pu,Mingrui.,Lai,Xue.,Li,Yan.,Zhu,Yulin.,Wei,Zixiang.,...&He,Feng.(2023).Backbone Tuning Enhances the Solution Aggregation to Refine Fibrillization Network Morphology for Efficient All-Chlorinated Polymer Donor.ACS Materials Letters,5(9),2369-2376.
MLA
Pu,Mingrui,et al."Backbone Tuning Enhances the Solution Aggregation to Refine Fibrillization Network Morphology for Efficient All-Chlorinated Polymer Donor".ACS Materials Letters 5.9(2023):2369-2376.
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