Macromolecular Architecture‐Dependent Polymorphous Crystallization Behavior of PVDF in the PVDF/γ‐BL System via Thermally Induced Phase Separation

Author:

Gaßdorf Florian1,Fan Zengxuan1,Schwaderer Jan2,Beuermann Sabine2,Wilhelm René3,Weber Alfred P.4,Fischlschweiger Michael1

Affiliation:

1. Chair of Technical Thermodynamics and Energy Efficient Material Treatment Institute for Energy Process Engineering and Fuel Technology Clausthal University of Technology Agricolastraße 4 38678 Clausthal‐Zellerfeld Germany

2. Institute of Technical Chemistry Clausthal University of Technology Arnold‐Sommerfeld‐Str. 4 38678 Clausthal‐Zellerfeld Germany

3. Institute of Organic Chemistry Clausthal University of Technology Leibnizstraße 6 38678 Clausthal‐Zellerfeld Germany

4. Institute of Particle Technology Clausthal University of Technology Leibnizstraße 19 38678 Clausthal‐Zellerfeld Germany

Abstract

AbstractThis study investigates the effect of the macromolecular architecture of poly(vinylidene fluoride) (PVDF) on its thermally induced phase separation (TIPS) behavior and polymorphic crystallization in the PVDF/γ‐butyrolactone (PVDF/γ‐BL) system. Preparative PVDF fractions with specific macromolecular architecture and phase constitution are generated. The results show that PVDF's macromolecular architecture, particularly the degree of branching and regio‐defects, plays a significant role in its temperature‐dependent crystallization and resulting polymorphic phases. While regio‐defects dominate crystallization in the temperature range between 30 and 25 °C, the degree of branching becomes decisive in the 25–20 °C interval. The developed fractions of PVDF are further analyzed in terms of their molecular weight distribution, revealing that the PVDF fractions crystallized out of solution have similar molecular weight distributions with lower dispersity compared with the feed polymer. These findings are crucial for macromolecular separation and adjustment of PVDF polymorphic properties and hence for the development of tailor‐made PVDF matrix materials for composites and membranes. The findings suggest the possibility of polymorphous phase tailoring of PVDF based on macromolecular architecture due to temperature‐controlled crystallization out of solution and strongly motivate further research to reveal deeper knowledge of regio‐defect and branching influence of PVDF solution crystallization.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Organic Chemistry

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