Polybenzoxazine modified by phenolphthalein‐based poly(arylene ether nitrile): Better thermal, mechanical, and dielectric properties

Author:

Zhang Shuai12ORCID,He Pan3,Liu Yalin45,Chen Gang12,Han Rui12ORCID

Affiliation:

1. School of Materials Science and Engineering Xihua University Chengdu China

2. Engineering Research Center of Intelligent Air‐Ground Integration Vehicle and Control (Xihua University), Ministry of Education Chengdu China

3. Sichuan Provincial Engineering Research Center of Functional Development and Application of High Performance Special Textile Materials Chengdu Textile College Chengdu China

4. Sichuan Special Equipment Inspection Institute Chengdu China

5. Technology Innovation Center of Hydrogen Storage‐Transportation and Fueling Equipments for State Market Regulation Chengdu China

Abstract

AbstractPolybenzoxazine, as a ring‐opening polymerized thermosetting resin, suffers from poor toughness. Blending with thermoplastic polymers is a convenient and efficient approach to improve the toughness, however, at the cost of thermal and mechanical properties. In this work, a high‐performance thermoplastic polymer poly(arylene ether nitrile) (PEN) with Tg higher than polybenzoxazine's was used to modify the polybenzoxazine poly(BA‐a). It was found that the PEN improved the mechanical properties, with elongation at break value increased from 1.75% to 3.11% and tensile strength increased from 17.99 to 32.19 MPa when 30 wt% of PEN was introduced. Moreover, due to the better thermal resistance and thermal stability of PEN, Tg of the composites increased from 205.6 to 220.5°C, chary yield at 800°C (Yc) increased from 28% to 46.4%. It was also noted that homogeneous blend was formed at low loading of PEN but phase separation occurred at high content of PEN, with PEN forming isolated spheres. Due to the voids formed between continuous phase and the isolated PEN spheres, the dielectric constant decreased from 3.84 to 3.30 at 1 MHz.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Sichuan Province

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Surfaces, Coatings and Films,General Chemistry

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