材料科学
韧性
极限抗拉强度
表面改性
位阻效应
单体
共聚物
聚合物
接触角
机械强度
增韧
化学工程
结晶度
纳米技术
双酚A
高分子化学
原材料
有机化学
电介质
作者
Jingnan Xu,Yi Cheng,Mingze Xia,Ziyue Jiao,Jiaming Liang,Zuxin Yao,Zhiyong Wei
标识
DOI:10.1021/acs.biomac.6c01078
摘要
Abstract A persistent challenge in the development of biobased materials is to balance sustainability with robust mechanical properties and specific functionalities. In this context, the present study provides a structure-guided functionalization strategy that offers a viable route toward this goal by integrating the introduction of functional groups into biobased feedstocks with precise control over polymer architecture. Specifically, a novel fluorinated biobased bisphenol monomer was synthesized. Its high steric bulk and fluorinated nature effectively reduce the material’s dielectric constant and enhance hydrophobicity, thereby broadening the functional application scope of biobased polymers. Furthermore, by designing a terpolymer system incorporating rigid, semirigid, and flexible segments, a substantial increase in toughness was achieved without significantly compromising thermal stability. The resulting material exhibits a tensile strength of 51.5 MPa, an elongation at break of 75%, a low dielectric constant of 2.48 at 1 MHz, and a water contact angle of 90°. This work demonstrates that combining sterically demanding fluorinated monomers with a synergistic rigid-flexible architecture provides an effective pathway for functionalizing biobased materials and toughening high-performance polymers.
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