Effects of chemical composition and physicochemical properties of poplar biomass on the performance of 3D printed poplar-reinforced PLA materials

IF 4.9
Anqi Ji, Samarthya Bhagia, Nara Han, Kwang Ho Kim, Gyu Leem, Nidia C. Gallego, Shuyang Zhang, Kai Li, Soydan Ozcan, Arthur J. Ragauskas and Chang Geun Yoo
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Abstract

Lignocellulosic biomass has been well-acknowledged as a filler for making 3D printed composites. The technical performances of composites were influenced by the characteristics of the components. The correlations between poplar biomass properties and the mechanical and thermal performances of the 3D printed poplar-plastic composites were investigated. The characteristics of poplar were modified by different pretreatment methods, including using hot water, dilute acid, and organic solvent (organosolv), and each treated poplar biomass was applied as a filler in a polylactic acid (PLA) polymer matrix to produce eco-friendly materials. These solvent pretreatments increased the hydrophobicity and surface area of poplar. Organosolv treated poplar showed the highest cellulose content and significantly increased Young's modulus of its biocomposites. Principal component analysis revealed that the specific surface area and water contact angle of biomass contributed to the thermal stability of biocomposites. Additionally, the degree of polymerization of cellulose and xylan content within the biomass correlated with the biocomposites' break stress. Notably, the crystallinity of biocomposites impacted the modulus of these materials. The reported relationships between biomass characteristics and 3D printed composite behaviors provide guidance for optimizing biomass processing in biocomposite applications.

Abstract Image

杨树生物量的化学组成和理化性质对3D打印杨树增强PLA材料性能的影响
木质纤维素生物质已被公认为制造3D打印复合材料的填料。复合材料的技术性能受到组分特性的影响。研究了3D打印杨木-塑料复合材料的力学和热性能与杨木生物量特性的相关性。采用热水、稀酸、有机溶剂等预处理方法对杨树的特性进行改性,并将处理后的杨树生物质作为填料应用于聚乳酸(PLA)聚合物基体中,制备出环保型材料。这些溶剂预处理提高了杨树的疏水性和比表面积。有机溶剂处理后的杨树纤维素含量最高,杨氏模量显著增加。主成分分析表明,生物质的比表面积和水接触角对生物复合材料的热稳定性有影响。此外,生物质中纤维素的聚合程度和木聚糖含量与生物复合材料的断裂应力有关。值得注意的是,生物复合材料的结晶度影响了这些材料的模量。报道的生物质特性与3D打印复合材料行为之间的关系为优化生物复合材料应用中的生物质处理提供了指导。
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