Polymorph‐Dependent Multi‐Level Supramolecular Self‐Assembly and Local Charge Transport of a Conjugated Polymer in Solution and Solid States

Author:

Deng Junyang123,Zheng Wenhao4,Wang Yun45,Cheng Miao12,Jin Qingqing12,Ke Yubin6,Zheng Zilong5,Janssen René A. J.7,Li Ling12,Liu Ming12,Wang Hai I.48ORCID,Li Mengmeng123

Affiliation:

1. Key Lab of Fabrication Technologies for Integrated Circuits Chinese Academy of Sciences Beijing 100029 China

2. Institute of Microelectronics Chinese Academy of Sciences Beijing 100029 China

3. University of Chinese Academy of Sciences Beijing 100049 China

4. Max Planck Institute for Polymer Research Ackermannweg 10 55128 Mainz Germany

5. Faculty of Materials and Manufacturing Beijing University of Technology Beijing 100124 China

6. Dongguan Neutron Science Center Institute of High Energy Physics Chinese Academy of Sciences Dongguan Guangdong 523808 China

7. Molecular Materials and Nanosystems Institute for Complex Molecular Systems Eindhoven University of Technology P.O. Box 513 Eindhoven 5600 MB The Netherlands

8. Utrecht University Princetonplein 1 Utrecht 3584 CC The Netherlands

Abstract

AbstractThe polymorphic behavior of conjugated polymers enables tunable optoelectronic properties, but their transport mechanism remains elusive due to the inherent complexity and uncontrollability of polymorphic self‐assembly behaviors and electronic processes at various length scales, alongside the ambiguous relationship between solution and solid states. Herein, precise control of multi‐level supramolecular self‐assembly of a polymorphic conjugated polymer, N‐PDPP4T‐HD with two distinct semi‐crystalline aggregated phases (β1 and β2) via solvent engineering is demonstrated. β1 forms 1D worm‐like nanostructures in solution, whereas β2 generates 2D nanoscale lamellar configuration, confirmed by experimental observation and molecular dynamic simulation. Such solution‐state features are inherited in the solid state (1D nanofibers for β1 and 2D granular‐like structures for β2). X‐ray characterizations reveal larger crystalline domains on the nanometer scale, reduced π‐stacking distance on the Ångstrom scale, and diminished paracrystallinity disorder for solid‐state β2. Going beyond conventional DC transistor characterizations, contact‐free ultrafast terahertz spectroscopy to unveil AC short‐range, intrinsic transport properties is employed. Longer charge carrier scattering time and thus intrinsic mobility of β2 result in threefold higher short‐range photoconductivity than β1. This work establishes the “solution structure – solid structure – local transport” relation in polymorphic conjugated polymers and provides new opportunities for high‐performance plastic electronic devices.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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