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通过ICRI89利用食物垃圾可持续生产聚羟基脂肪酸酯:与聚(甲基丙烯酸甲酯)共混物增强3D打印

Sustainable Polyhydroxyalkanoate Production from Food Waste via ICRI89: Enhanced 3D Printing with Poly (Methyl Methacrylate) Blend.

作者信息

Rofeal Marian, Abdelmalek Fady, Pietrasik Joanna

机构信息

International Center for Research on Innovative Biobased Materials (ICRI-BioM)-International Research Agenda, Lodz University of Technology, Zeromskiego 116, 90-924 Lodz, Poland.

Department of Botany and Microbiology, Faculty of Science, Alexandria University, Alexandria 21521, Egypt.

出版信息

Polymers (Basel). 2023 Oct 20;15(20):4173. doi: 10.3390/polym15204173.

Abstract

In view of implementing green technologies for bioplastic turning polices, novel durable feedstock for ICRI89 used for efficient polyhydroxybutyrate (PHB) generation is proposed herein. First, two food waste (FW) pretreatment methods were compared, where the ultrasonication approach for 7 min was effective in easing the following enzymatic action. After treatment with a mixture of cellulase/amylases, an impressive 25.3 ± 0.22 g/L of glucose was liberated per 50 g of FW. Furthermore, a notable 2.11 ± 0.06 g/L PHB and 3.56 ± 0.11 g/L cell dry eight (CDW) over 120 h were generated, representing a productivity percentage of 59.3 wt% using 25% FW hydrolysate. The blend of polyhydroxybutyrate/poly (methyl methacrylate) (PHB/PMMA = 1:2) possessed the most satisfactory mechanical properties. For the first time, PHB was chemically crosslinked with PMMA using dicumyl peroxide (DCP), where a concentration of 0.3 wt% had a considerable effect on increasing the mechanical stability of the blend. FTIR analysis confirmed the molecular interaction between PHB and PMMA showing a modest expansion of the C=O stretching vibration at 1725 cm. The DCP-PHB/PMMA blend had significant thermal stability and biodegradation profiles comparable to those of the main constituent polymers. More importantly, a 3-Dimetional (3D) filament was successfully extruded with a diameter of 1.75 mm, where no blockages or air bubbles were noticed via SEM. A new PHB/PMMA "key of life" 3D model has been printed with a filling percentage of 60% and a short printing time of 19.2 min. To conclude, high-performance polymeric 3D models have been fabricated to meet the pressing demands for future applications of sustainable polymers.

摘要

鉴于为生物塑料转向政策实施绿色技术,本文提出了用于高效生成聚羟基丁酸酯(PHB)的新型耐用原料ICRI89。首先,比较了两种食物垃圾(FW)预处理方法,其中7分钟的超声处理方法有效地促进了后续的酶促作用。在用纤维素酶/淀粉酶混合物处理后,每50克FW可释放出令人印象深刻的25.3±0.22克/升葡萄糖。此外,在120小时内生成了显著的2.11±0.06克/升PHB和3.56±0.11克/升细胞干重(CDW),使用25%FW水解产物时的生产率百分比为59.3重量%。聚羟基丁酸酯/聚(甲基丙烯酸甲酯)(PHB/PMMA = 1:2)的共混物具有最令人满意的机械性能。首次使用过氧化二异丙苯(DCP)将PHB与PMMA进行化学交联,其中0.3重量%的浓度对提高共混物的机械稳定性有显著影响。傅里叶变换红外光谱(FTIR)分析证实了PHB和PMMA之间的分子相互作用,显示出在1725厘米处C=O伸缩振动有适度扩展。DCP-PHB/PMMA共混物具有与主要成分聚合物相当的显著热稳定性和生物降解特性。更重要的是,成功挤出了直径为1.75毫米的三维(3D)长丝,通过扫描电子显微镜(SEM)未发现堵塞或气泡。已打印出填充率为60%且打印时间短至19.2分钟的新型PHB/PMMA“生命之匙”3D模型。总之,已制造出高性能聚合物3D模型,以满足可持续聚合物未来应用的紧迫需求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdc7/10610804/54e6e87df0f7/polymers-15-04173-g001.jpg

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