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可进行非生物水解降解的类聚乙烯共混物

Polyethylene-Like Blends Amenable to Abiotic Hydrolytic Degradation.

作者信息

Eck Marcel, Bernabeu Léa, Mecking Stefan

机构信息

Department of Chemistry, University of Konstanz, Universitätsstr. 10, 78457 Konstanz, Germany.

出版信息

ACS Sustain Chem Eng. 2023 Mar 13;11(12):4523-4530. doi: 10.1021/acssuschemeng.2c07537. eCollection 2023 Mar 27.

Abstract

Long-chain aliphatic polyester-18,18 (PE-18,18) exhibits high density polyethylene-like material properties and, as opposed to high density polyethylene (HDPE), can be recycled in a closed loop via depolymerization to monomers under mild conditions. Despite the in-chain ester groups, its high crystallinity and hydrophobicity render PE-18,18 stable toward hydrolysis even under acidic conditions for one year. Hydrolytic degradability, however, can be a desirable material property as it can serve as a universal backstop to plastic accumulation in the environment. We present an approach to render PE-18,18 hydrolytically degradable by melt blending with long-chain aliphatic poly(H-phosphonate)s (PP). The blends can be processed via common injection molding and 3D printing and exhibit HDPE-like tensile properties, namely, high stiffness ( = 750-940 MPa) and ductility (ε = 330-460%) over a wide range of blend ratios (0.5-20 wt % PP content). Likewise, the orthorhombic solid-state structure and crystallinity (χ ≈ 70%) of the blends are similar to HDPE. Under aqueous conditions in phosphate-buffered media at 25 °C, the blends' PP component is hydrolyzed completely to the underlying long-chain diol and phosphorous acid within four months, as evidenced by NMR analyses. Concomitant, the PE-18,18 major blend component is partially hydrolyzed, while neat PE-18,18 is inert under identical conditions. The hydrolysis of the blend components proceeded throughout the bulk of the specimens as confirmed by gel permeation chromatography (GPC) measurements. The significant molar mass reduction upon extended immersion in water ( (virgin blends) ≈ 50-70 kg mol; (hydrolyzed blends) ≈ 7-11 kg mol) resulted in embrittlement and fragmentation of the injection molded specimens. This increases the surface area and is anticipated to promote eventual mineralization by abiotic and biotic pathways of these HDPE-like polyesters in the environment.

摘要

长链脂肪族聚酯-18,18(PE-18,18)具有类似高密度聚乙烯的材料特性,并且与高密度聚乙烯(HDPE)不同,它可以在温和条件下通过解聚为单体进行闭环回收。尽管其链内含有酯基,但其高结晶度和疏水性使得PE-18,18即使在酸性条件下放置一年也对水解稳定。然而,水解降解性可能是一种理想的材料特性,因为它可以作为环境中塑料积累的通用防线。我们提出了一种通过与长链脂肪族聚(H-膦酸酯)(PP)熔融共混使PE-18,18具有水解降解性的方法。这些共混物可以通过普通注塑和3D打印进行加工,并在很宽的共混比例范围(PP含量为0.5-20 wt%)内表现出类似HDPE的拉伸性能,即高刚度( = 750-940 MPa)和延展性(ε = 330-460%)。同样,共混物的正交晶态固态结构和结晶度(χ ≈ 70%)与HDPE相似。在25°C的磷酸盐缓冲介质的水性条件下,核磁共振分析表明,共混物中的PP组分在四个月内完全水解为基础的长链二醇和亚磷酸。与此同时,PE-18,18主要共混组分发生部分水解,而纯PE-18,18在相同条件下是惰性的。凝胶渗透色谱(GPC)测量证实,共混物组分的水解在整个样品中进行。长时间浸泡在水中后显著的摩尔质量降低((原始共混物)≈ 50-70 kg/mol;(水解后的共混物)≈ 7-11 kg/mol)导致注塑样品脆化和破碎。这增加了表面积,并预计会促进这些类似HDPE的聚酯在环境中通过非生物和生物途径最终矿化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1491/10052336/f40e19af5121/sc2c07537_0001.jpg

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