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来自酚类植物单体的可环境降解的高性能热塑性塑料。

Environmentally degradable, high-performance thermoplastics from phenolic phytomonomers.

作者信息

Kaneko Tatsuo, Thi Tran Hang, Shi Dong Jian, Akashi Mitsuru

机构信息

Department of Applied Chemistry, Graduate School of Engineering, Osaka University, 2-1, Yamadaoka, Suita 565-0871, Japan.

出版信息

Nat Mater. 2006 Dec;5(12):966-70. doi: 10.1038/nmat1778. Epub 2006 Nov 26.

Abstract

Aliphatic polyesters, such as poly(lactic acid), which degrade by hydrolysis, from naturally occurring molecules form the main components of biodegradable plastics. However, these polyesters have become substitutes for only a small percentage of the currently used plastic materials because of their poor thermal and mechanical properties. Polymers that degrade into natural molecules and have a performance closer to that of engineering plastics would be highly desirable. Although the use of a high-strength filler such as a bacterial cellulose or modified lignin greatly increases the plastic properties, it is the matrix polymer that determines the intrinsic properties of the composite. The introduction of an aromatic component into the thermoplastic polymer backbone is an efficient method to intrinsically improve the material performance. Here, we report the preparation of environmentally degradable, liquid crystalline, wholly aromatic polyesters. The polyesters were derived from polymerizable plant-derived chemicals--in other words, 'phytomonomers' that are widely present as lignin biosynthetic precursors. The mechanical performance of these materials surpasses that of current biodegradable plastics, with a mechanical strength, sigma, of 63 MPa, a Young's modulus, E, of 16 GPa, and a maximum softening temperature of 169 degrees C. On light irradiation, their mechanical properties improved further and the rate of hydrolysis accelerated.

摘要

脂肪族聚酯,如聚乳酸,通过水解降解,由天然存在的分子构成可生物降解塑料的主要成分。然而,由于其热性能和机械性能较差,这些聚酯仅替代了目前使用的塑料材料中的一小部分。降解为天然分子且性能更接近工程塑料的聚合物将是非常理想的。尽管使用诸如细菌纤维素或改性木质素等高强度填料可大大提高塑料性能,但决定复合材料固有性能的是基体聚合物。将芳香族成分引入热塑性聚合物主链是从本质上提高材料性能的有效方法。在此,我们报告了环境可降解的液晶全芳香族聚酯的制备。这些聚酯衍生自可聚合的植物源化学品——换句话说,即作为木质素生物合成前体广泛存在的“植物单体”。这些材料的机械性能超过了目前的可生物降解塑料,其机械强度σ为63兆帕,杨氏模量E为16吉帕,最高软化温度为169摄氏度。在光照下,它们的机械性能进一步提高,水解速率加快。

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