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Novel Sustainable Composites Based on Poly(hydroxybutyrate-co-hydroxyvalerate) and Seagrass Beach-CAST Fibers: Performance and Degradability in Marine Environments

机译:基于聚(羟基丁酸酯-共-羟基戊酸酯)和海草海滩-CAST纤维的新型可持续复合材料:在海洋环境中的性能和降解性

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摘要

In order to produce sustainable, bio-based and highly biodegradable materials, composites based on poly(hydroxybutyrate-co-hydroxyvalerate) (PHBV) and fibers of Posidonia oceanica (PO), a dominant Mediterranean seagrass, were produced by simple melt mixing and characterized in terms of thermal stability, morphology and rheological/mechanical properties. In view of their potential application in marine environments, degradation of the developed composites was evaluated under simulated and real marine environmental conditions for 1 year. Using 10 wt % of acetyl tributyl citrate (ATBC) as a plasticizer, smooth processing was achieved for up to 30 wt % of PO fibers, despite the reduction of the melt fluidity observed with increasing fiber loading. The tensile modulus slightly increased (from 2 to 2.4 GPa) while the tensile strength and the elongation decreased (from 23.6 to 21.5 MPa and from 3.2 to 1.9%, respectively) by increasing the PO fiber content from 0 to 30 wt %. Interestingly, the impact resistance of the composites increased with the increasing of the PO content: the Charpy’s impact energy increased from 3.6 (without fiber) to 4.4 kJ/m2 for the composite with 30 wt %. The results of the aerobic biodegradation under simulated marine conditions showed that the presence of PO fibers favored the physical disintegration of the composite increasing the biodegradation rate of the polymeric matrix: after 216 days, the composite with 20 wt % PO fibers showed a biodegradability of about 30% compared to 20% of the composite without fibers. Under real marine conditions, the specimens containing PO fibers showed higher weight losses and deterioration of tensile properties compared to those without fibers. Presumably, biodegradation occurred after colonization of the specimen, and the specimens with 20 wt % PO fibers showed well-developed biofilm consisting of bacteria and fungi on the surface after only 3 months of incubation in marine sediments, unlike the no-fiber specimens. Consequently, the persistence of an adequate mechanical performance for a relatively long period (1 year), due to a moderate rate of biodegradation in the marine environment, make the developed PHBV/PO composites particularly suitable for the production of relatively low-cost and biodegradable items which are usable in the sea and/or sand dunes, increasing the market opportunities for biopolymers such as PHBV and, at the same time, finding an eco-sustainable valorization for the PO fibrous residues accumulated in large quantities on Mediterranean beaches, which represents a problem for coastal municipalities.
机译:为了生产可持续的,生物基的和高度可生物降解的材料,通过简单的熔融混合并表征对聚(羟基丁酸-共-羟基戊酸酯)(PHBV)和海洋性海草(Posidonia oceanica,PO)的纤维进行了复合。在热稳定性,形态和流变/机械性能方面。考虑到它们在海洋环境中的潜在应用,在模拟和真实的海洋环境条件下对开发的复合材料的降解进行了一年的评估。使用10重量%的乙酰基柠檬酸三丁酯(ATBC)作为增塑剂,尽管随着纤维负载的增加而观察到的熔体流动性降低,但仍可对多达30重量%的PO纤维进行平滑加工。通过将PO纤维含量从0增加到30 wt%,拉伸模量略有增加(从2 GPa增加到2.4 GPa),而抗拉强度和伸长率降低(分别从23.6 MPa到21.5 MPa和3.2到1.9%)。有趣的是,复合材料的抗冲击性随PO含量的增加而增加:对于30 wt%的复合材料,夏比的冲击能从3.6(无纤维)增加到4.4 kJ / m 2 。在模拟的海洋条件下好氧生物降解的结果表明,PO纤维的存在有利于复合材料的物理分解,从而提高了聚合物基质的生物降解速率:216天后,含有20 wt%PO纤维的复合材料显示出约生物降解性。 30%的复合材料不含纤维。在实际海洋条件下,与不含纤维的试样相比,含PO纤维的试样显示出更高的重量损失和拉伸性能的下降。据推测,标本定植后发生了生物降解,与无纤维标本不同,在海洋沉积物中温育仅3个月后,具有20 wt%PO纤维的标本在表面上形成了由细菌和真菌组成的发达生物膜。因此,由于海洋环境中的生物降解速度适中,因此在相当长的一段时间(1年)内仍具有足够的机械性能,这使得已开发的PHBV / PO复合材料特别适合于生产成本相对较低且可生物降解的复合材料可在海和/或沙丘中使用的物品,增加了PHBV等生物聚合物的市场机会,同时,发现了地中海海滩上大量积累的PO纤维残留物的生态可持续增值,这代表了沿海城市的问题。

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