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Authors Wu, H.C. ; Lissel, F. ; Wang, G.N. ; Koshy, D.M. ; Nikzad, S. ; Yan, H. ; Xu, J. ; Luo, S.C. ; Matsuhisa, N. ; Cheng, Y. ; Wang, F. ; Ji, B. ; Li, D. ; Chen, W.C. ; Xua, G. ; Bao, Z.
Title Metal-ligand based mechanophores enhance both mechanical robustness and electronic performance of polymer semiconductors
Date 10.03.2021
Number 59181
Abstract The backbone of diketopyrrolopyrrole–thiophene–vinylene–thiophene–based polymer semiconductors (PSCs) is modified with pyridine (Py) or bipyridine ligands to complex Fe(II) metal centers, allowing the metal–ligand complexes to act as mechanophores and dynamically crosslink the polymer chains. Mono– and bi–dentate ligands are observed to exhibit different degrees of bond strengths, which subsequently affect the mechanical properties of these Wolf–type–II metallopolymers. The counter ion also plays a crucial role, as it is observed that Py–Fe mechanophores with non–coordinating BPh4– counter ions (Py–FeB) exhibit better thin film ductility with lower elastic modulus, as compared to the coordinating chloro ligands (Py–FeC). Interestingly, besides mechanical robustness, the electrical charge carrier mobility can also be enhanced concurrently when incorporating Py–FeB mechanophores in PSCs. This is a unique observation among stretchable PSCs, especially that most reports to date describe a decreased mobility when the stretchability is improved. Next, it is determined that improvements to both mobility and stretchability are correlated to the solid–state molecular ordering and dynamics of coordination bonds under strain, as elucidated via techniques of grazing–incidence X–ray diffraction and X–ray absorption spectroscopy techniques, respectively. This study provides a viable approach to enhance both the mechanical and the electronic performance of polymer–based soft devices.
Publisher Advanced Functional Materials
Wikidata
Citation Advanced Functional Materials 31 (2021) 2009201
DOI https://doi.org/10.1002/ADFM.202009201
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