Burgos Pintos Pedro, Maturi Mirko, Sanz de León Alberto, Molina Sergio I
Departamento Ciencia de los Materiales, Ingeniería Metalúrgica y Química Inorgánica, IMEYMAT, Facultad de Ciencias, Universidad de Cádiz, Campus Río San Pedro, s/n, 11510 Puerto Real, Spain.
Polymers (Basel). 2024 Oct 24;16(21):2981. doi: 10.3390/polym16212981.
In this study, olive pit agro-waste from the olive oil industry is valorized by incorporating it as an additive in a polyethylene terephthalate glycol (PETG) matrix to develop bio-based composite materials for large format additive manufacturing (LFAM). The olive pits were first ground into olive pit powder (OPP) and then functionalized by polymerizing poly(butylene adipate-co-terephthalate) PBAT on their surface, resulting in a hydrophobic, modified olive pit powder (MOPP) with enhanced compatibility with the PETG matrix. OPP and MOPP composites were compounded and 3D-printed via Fused Granular Fabrication (FGF) using 5, 10, and 15 wt.% concentrations. The PBAT coating increased the degradation temperature and specific heat capacity of the material, contributing to a lower melt viscosity during printing, as confirmed by MFR, MDSC, and TGA analyses. Tensile testing revealed that MOPP composites generally exhibited superior mechanical properties compared to OPP composites, likely due to the improved compatibility between PBAT on the MOPP surface and the PETG matrix. SEM analysis further validated these findings, showing a highly irregular and porous fracture surface in OPP composites, while MOPP composites displayed a smooth surface with well-integrated MOPP in the PETG matrix.
在本研究中,橄榄油行业产生的橄榄核农业废弃物通过作为添加剂掺入聚对苯二甲酸乙二醇酯二醇(PETG)基体中得以增值利用,从而开发用于大幅面增材制造(LFAM)的生物基复合材料。首先将橄榄核研磨成橄榄核粉(OPP),然后通过在其表面聚合聚己二酸丁二醇酯-对苯二甲酸丁二醇酯(PBAT)对其进行功能化处理,得到与PETG基体相容性增强的疏水性改性橄榄核粉(MOPP)。将OPP和MOPP复合材料进行混合,并使用5%、10%和15%(重量)的浓度通过熔融粒料制造(FGF)进行3D打印。PBAT涂层提高了材料的降解温度和比热容,有助于在打印过程中降低熔体粘度,这一点通过熔体流动速率(MFR)、调制差示扫描量热法(MDSC)和热重分析(TGA)得到证实。拉伸测试表明,与OPP复合材料相比,MOPP复合材料通常表现出更优异的机械性能,这可能是由于MOPP表面的PBAT与PETG基体之间的相容性得到了改善。扫描电子显微镜(SEM)分析进一步验证了这些结果,显示OPP复合材料的断裂表面高度不规则且多孔,而MOPP复合材料的表面光滑,MOPP在PETG基体中结合良好。