Study of the Interplay Among Melt Morphology, Rheology and 3D Printability of Poly(Lactic Acid)/Poly(3-Hydroxybutyrate-Co-3-Hydroxyvalerate) Blends.

IF 5.2 3区 医学 Q1 ENGINEERING, BIOMEDICAL Journal of Functional Biomaterials Pub Date : 2025-01-01 DOI:10.3390/jfb16010009
Marco Costantini, Flavio Cognini, Roberta Angelini, Sara Alfano, Marianna Villano, Andrea Martinelli, David Bolzonella, Marco Rossi, Andrea Barbetta
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Abstract

Polymeric materials made from renewable sources that can biodegrade in the environment are attracting considerable attention as substitutes for petroleum-based polymers in many fields, including additive manufacturing and, in particular, Fused Deposition Modelling (FDM). Among the others, poly(hydroxyalkanoates) (PHAs) hold significant potential as candidates for FDM since they meet the sustainability and biodegradability standards mentioned above. However, the most utilised PHA, consisting of the poly(hydroxybutyrate) (PHB) homopolymer, has a high degree of crystallinity and low thermal stability near the melting point. As a result, its application in FDM has not yet attained mainstream adoption. Introducing a monomer with higher excluded volume, such as hydroxyvalerate, in the PHB primary structure, as in poly(hydroxybutyrate-co-valerate) (PHBV) copolymers, reduces the degree of crystallinity and the melting temperature, hence improving the PHA printability. Blending amorphous poly(lactic acid) (PLA) with PHBV enhances further PHA printability via FDM. In this work, we investigated the printability of two blends characterised by different PLA and PHBV weight ratios (25:75 and 50:50), revealing the close connection between blend microstructures, melt rheology and 3D printability. For instance, the relaxation time associated with die swelling upon extrusion determines the diameter of the extruded filament, while the viscoelastic properties the range of extrusion speed available. Through thoroughly screening printing parameters such as deposition speed, nozzle diameter, flow percentage and deposition platform temperature, we determined the optimal printing conditions for the two PLA/PHBV blends. It turned out that the blend with a 50:50 weight ratio could be printed faster and with higher accuracy. Such a conclusion was validated by replicating with remarkable fidelity high-complexity objects, such as a patient's cancer-affected iliac crest model.

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聚乳酸/聚3-羟基丁酸- co -3-羟基戊酸共混物熔体形态、流变性与3D打印性能的相互作用研究。
由可再生能源制成的可在环境中生物降解的聚合物材料作为石油基聚合物的替代品在许多领域引起了人们的广泛关注,包括增材制造,特别是熔融沉积建模(FDM)。其中,聚羟基烷酸酯(PHAs)作为FDM的候选材料具有巨大的潜力,因为它们符合上述可持续性和生物降解性标准。然而,最常用的PHA由聚羟基丁酸酯(PHB)均聚物组成,在熔点附近具有高结晶度和低热稳定性。因此,它在FDM中的应用尚未达到主流。在PHB初级结构中引入具有较高排除体积的单体,如羟基戊酸酯,如聚(羟基丁酸酯-共戊酸酯)共聚物(PHBV),降低结晶度和熔化温度,从而提高PHA的可印刷性。非晶态聚乳酸(PLA)与PHBV共混进一步提高了PHA通过FDM的可打印性。在这项工作中,我们研究了两种不同PLA和PHBV重量比(25:75和50:50)的共混物的打印性,揭示了共混物微观结构、熔体流变性和3D打印性之间的密切联系。例如,与挤压时模具膨胀相关的松弛时间决定了挤压长丝的直径,而粘弹性特性决定了挤压速度的可用范围。通过对沉积速度、喷嘴直径、流量百分比和沉积平台温度等打印参数的全面筛选,确定了两种PLA/PHBV共混物的最佳打印条件。事实证明,重量比为50:50的混合物可以打印得更快,精度更高。这一结论通过对高复杂性物体(如患者受癌症影响的髂嵴模型)的高保真度复制得到了验证。
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来源期刊
Journal of Functional Biomaterials
Journal of Functional Biomaterials Engineering-Biomedical Engineering
CiteScore
4.60
自引率
4.20%
发文量
226
审稿时长
11 weeks
期刊介绍: Journal of Functional Biomaterials (JFB, ISSN 2079-4983) is an international and interdisciplinary scientific journal that publishes regular research papers (articles), reviews and short communications about applications of materials for biomedical use. JFB covers subjects from chemistry, pharmacy, biology, physics over to engineering. The journal focuses on the preparation, performance and use of functional biomaterials in biomedical devices and their behaviour in physiological environments. Our aim is to encourage scientists to publish their results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Several topical special issues will be published. Scope: adhesion, adsorption, biocompatibility, biohybrid materials, bio-inert materials, biomaterials, biomedical devices, biomimetic materials, bone repair, cardiovascular devices, ceramics, composite materials, dental implants, dental materials, drug delivery systems, functional biopolymers, glasses, hyper branched polymers, molecularly imprinted polymers (MIPs), nanomedicine, nanoparticles, nanotechnology, natural materials, self-assembly smart materials, stimuli responsive materials, surface modification, tissue devices, tissue engineering, tissue-derived materials, urological devices.
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