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用于聚乳酸基食品包装的热解生物质填料

Pyrolyzed Biomass Filler for PLA-Based Food Packaging.

作者信息

Joe Andreea-Cătălina, Tănase Maria, Călin Catalina, Sîrbu Elena-Emilia, Banu Ionuț, Bomboș Dorin, Cuc Stanca

机构信息

Chemistry Department, Petroleum-Gas University of Ploiesti, 39 Bucharest Blvd., 100680 Ploiesti, Romania.

Mechanical Engineering Department, Petroleum-Gas University of Ploiesti, 39 Bucharest Blvd., 100680 Ploiesti, Romania.

出版信息

Polymers (Basel). 2025 May 13;17(10):1327. doi: 10.3390/polym17101327.

Abstract

Poly(lactic acid) (PLA) is a biodegradable thermoplastic polymer used in various applications, including food packaging, 3D printing, textiles, and biomedical devices. Nevertheless, it presents several limitations, such as high hydrophobicity, low gas barrier properties, UV sensitivity, and brittleness. To overcome this issue, in this study, biochar (BC) produced through pyrolysis of bio-mass waste was incorporated (1 wt.%, 2wt.%, and 3 wt.%-PLA 1, PLA 2, and PLA 3) to enhance thermal and mechanical properties of PLA composites. The impact of pyrolysis temperature on the kinetic parameters, physicochemical characteristics, and structural properties of banana and orange peels for use as biochar added to PLA was investigated. The biomass waste such as banana and orange peels were characterized by proximal analysis and thermogravimetric analysis (TGA); meanwhile, the PLA composites were characterized by tensile straight, TGA, differential scanning calorimetry (DSC), scanning electron microscopy (SEM), and atomic force microscopy (AFM). The results indicated that the presence of biochar improved hygroscopic characteristics and Tg temperature from 62.98 °C for 1 wt.% to 80.29 °C for 3 wt.%. Additionally, it was found that the tensile strength of the composites increased by almost 30% for PLA 3 compared with PLA 1. The Young's modulus also increased from 194.334 MPa for PLA1 to 388.314 MPa for PLA3. However, the elongation decreased from 14.179 (PLA 1) to 7.240 mm (PLA3), and the maximum thermal degradation temperature shifted to lower temperatures ranging from 366 °C for PLA-1 to 345 °C for PLA-3 samples, respectively. From surface analysis, it was observed that the surface of these samples was relatively smooth, but small microcluster BC aggregates were visible, especially for the PLA 3 composite. In conclusion, the incorporation of biochar into PLA is a promising method for enhancing material performance while maintaining environmental sustainability by recycling biomass waste.

摘要

聚乳酸(PLA)是一种可生物降解的热塑性聚合物,应用于各种领域,包括食品包装、3D打印、纺织品和生物医学设备。然而,它存在一些局限性,如高疏水性、低气体阻隔性能、紫外线敏感性和脆性。为了克服这个问题,在本研究中,通过生物质废物热解产生的生物炭(BC)被加入到聚乳酸复合材料中(1 wt.%、2wt.%和3 wt.%——分别为PLA 1、PLA 2和PLA 3),以提高其热性能和机械性能。研究了热解温度对用作添加到聚乳酸中的生物炭的香蕉皮和橙子皮的动力学参数、物理化学特性及结构性能的影响。通过近似分析和热重分析(TGA)对香蕉皮和橙子皮等生物质废物进行了表征;同时,通过拉伸试验、TGA、差示扫描量热法(DSC)、扫描电子显微镜(SEM)和原子力显微镜(AFM)对聚乳酸复合材料进行了表征。结果表明,生物炭的存在改善了吸湿特性,玻璃化转变温度从1 wt.%时的62.98℃提高到3 wt.%时的80.29℃。此外,发现与PLA 1相比,PLA 3复合材料的拉伸强度提高了近30%。杨氏模量也从PLA1的194.334 MPa增加到PLA3的388.314 MPa。然而,伸长率从14.179(PLA 1)降至7.240 mm(PLA3),最大热降解温度分别从PLA - 1的366℃转移到PLA - 3样品的345℃的较低温度范围。从表面分析可以观察到,这些样品的表面相对光滑,但可以看到小的微团簇生物炭聚集体,特别是对于PLA 3复合材料。总之,将生物炭加入到聚乳酸中是一种很有前景的方法,通过回收生物质废物,在保持环境可持续性的同时提高材料性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/89db/12114731/103c58d9bfad/polymers-17-01327-g001.jpg

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