Constructing a desired nanofibril network morphology for stretchable polymer films by weakening the intermolecular interaction of a conjugated polymer in an elastomer matrix and extending the film-forming time

A desired phase-separated morphology of interconnected polymer nanofibrils in an elastomer matrix is crucial for keeping the electrical properties under strain in conjugated polymer-elastomer blend systems. However, how to reduce the fibril size by controlling the solution aggregation and film-formi...

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Veröffentlicht in:Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2023-02, Vol.11 (6), p.232-2315
Hauptverfasser: Zhang, Tao, Liu, Yadi, Zhang, Lu, Wang, Sichun, Li, Junhang, Zuo, Jiaming, Yu, Xinhong, Zhang, Qiang, Han, Yanchun
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Sprache:eng
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Zusammenfassung:A desired phase-separated morphology of interconnected polymer nanofibrils in an elastomer matrix is crucial for keeping the electrical properties under strain in conjugated polymer-elastomer blend systems. However, how to reduce the fibril size by controlling the solution aggregation and film-forming kinetics remains unclear. Herein, we propose a strategy to induce an interpenetrating nanofibril network morphology with a small fibril size through weakening the intermolecular interactions and extending the film-forming time of P(NDI2OD-T2) (N2200) in an elastomer polystyrene- block -poly(ethylene-ran-butylene)- block -polystyrene (SEBS) matrix. This was enabled by using a low Hansen solubility parameter distance of the N2200 backbone ( R a(b) ) and high boiling point solvents, such as 1,2-dichlorobenzene ( o -DCB, R a(b) = 8.58 MPa 1/2 ) to dissolve the blend. The weak intermolecular interaction of N2200 in o -DCB suppresses the self-aggregation of N2200 in solution. Meanwhile, the long film-forming process ensures the slow but continuous growth of N2200 aggregates. Eventually, a sandwich-like vertical phase separation structure with N2200 enriched at both the top and bottom surfaces is obtained, where the N2200 layer comprises nanofibrils with a small fibril diameter (230 nm). Though they are favorable for charge transport, the wide bundles have greater brittleness and are prone to breaking under strain. The mobility of the blend film processed by Tol decreases continuously from 0.15 to 0.04 cm 2 V −1 s −1 at 150% strain. Low R a(b) solvent o -DCB weakens intermolecular interactions of N2200 in the SEBS matrix, leading to the formation of a nanofibril network morphology with a small fibril size (
ISSN:2050-7526
2050-7534
DOI:10.1039/d2tc04896e