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木聚糖塑料

Xylan Plastic.

作者信息

Jia Siyu, Lv Ziwen, Rao Jun, Lü Baozhong, Chen Gegu, Bian Jing, Li Mingfei, Peng Feng

机构信息

Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, China.

MOE Engineering Research Center of Forestry Biomass Materials and Energy, Beijing Forestry University, Beijing 100083, China.

出版信息

ACS Nano. 2023 Jul 25;17(14):13627-13637. doi: 10.1021/acsnano.3c02327. Epub 2023 Jul 13.

DOI:10.1021/acsnano.3c02327
PMID:37439501
Abstract

The increasing accumulation of plastic waste has brought serious environmental issues. Biodegradable plastics are promising candidates to solve the problem but still remain a scientific challenge. Here, xylan plastic (XP) was fabricated by a strategy of double cross-linking through etherification combined with hot pressing. The mechanical properties, particularly the toughness of XP, were significantly enhanced by the incorporation of chemical and physical cross-linking domains. The tensile strength, toughness, and modulus of XP can reach up to 55 MPa, 2.2 MJ/m, and 1.7 GPa, respectively, which are superior to most traditional plastics. Dynamic mechanical analysis (DMA) characterizations confirmed that XP is thermoplastic and can be hot formed. Additionally, the reversible hydrogen bond interaction between xylan chains could be simply regulated by water molecules, rendering XP readily transformed and repeatedly reprogrammed into versatile 2D/3D shapes. Moreover, XP showed a low thermal expansion coefficient and excellent optical properties. Cytotoxicity and degradability tests demonstrated that XP had excellent nontoxicity and can be biodegraded in 60 days. This work thus suggests an avenue for the scalable production of high-performance xylan-based plastics, in which the raw material comes from industrial wastes and exhibits great potential in response to plastic pollution.

摘要

塑料垃圾的不断积累带来了严重的环境问题。可生物降解塑料是解决该问题的有前途的候选材料,但仍然是一项科学挑战。在此,通过醚化结合热压的双重交联策略制备了木聚糖塑料(XP)。通过引入化学和物理交联域,显著提高了XP的机械性能,特别是韧性。XP的拉伸强度、韧性和模量分别可达55 MPa、2.2 MJ/m和1.7 GPa,优于大多数传统塑料。动态力学分析(DMA)表征证实XP是热塑性的,可以热成型。此外,木聚糖链之间的可逆氢键相互作用可以通过水分子简单调节,使XP易于转变并反复重新编程为通用的二维/三维形状。此外,XP显示出低的热膨胀系数和优异的光学性能。细胞毒性和降解性测试表明,XP具有优异的无毒性,可在60天内生物降解。因此,这项工作为高性能木聚糖基塑料的规模化生产提供了一条途径,其中原材料来自工业废料,在应对塑料污染方面具有巨大潜力。

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