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可复杂加工的超高分子量聚乙烯/纤维素纳米纤维生物纳米复合材料的熔融共混与非熔融共混

Melt- vs. Non-Melt Blending of Complexly Processable Ultra-High Molecular Weight Polyethylene/Cellulose Nanofiber Bionanocomposite.

作者信息

Sharip Nur Sharmila, Ariffin Hidayah, Yasim-Anuar Tengku Arisyah Tengku, Andou Yoshito, Shirosaki Yuki, Jawaid Mohammad, Tahir Paridah Md, Ibrahim Nor Azowa

机构信息

Institute of Tropical Forestry and Forest Products (INTROP), Universiti Putra Malaysia, UPM Serdang, Selangor 43400, Malaysia.

Department of Bioprocess Technology, Faculty of Biotechnology and Biomolecular Sciences, Universiti Putra Malaysia, UPM Serdang, Selangor 43400, Malaysia.

出版信息

Polymers (Basel). 2021 Jan 27;13(3):404. doi: 10.3390/polym13030404.

Abstract

The major hurdle in melt-processing of ultra-high molecular weight polyethylene (UHMWPE) nanocomposite lies on the high melt viscosity of the UHMWPE, which may contribute to poor dispersion and distribution of the nanofiller. In this study, UHMWPE/cellulose nanofiber (UHMWPE/CNF) bionanocomposites were prepared by two different blending methods: (i) melt blending at 150 °C in a triple screw kneading extruder, and (ii) non-melt blending by ethanol mixing at room temperature. Results showed that melt-processing of UHMWPE without CNF (MB-UHMWPE/0) exhibited an increment in yield strength and Young's modulus by 15% and 25%, respectively, compared to the Neat-UHMWPE. Tensile strength was however reduced by almost half. Ethanol mixed sample without CNF (EM-UHMWPE/0) on the other hand showed slight decrement in all mechanical properties tested. At 0.5% CNF inclusion, the mechanical properties of melt-blended bionanocomposites (MB-UHMWPE/0.5) were improved as compared to Neat-UHMWPE. It was also found that the yield strength, elongation at break, Young's modulus, toughness and crystallinity of MB-UHMWPE/0.5 were higher by 28%, 61%, 47%, 45% and 11%, respectively, as compared to the ethanol mixing sample (EM-UHMWPE/0.5). Despite the reduction in tensile strength of MB-UHMWPE/0.5, the value i.e., 28.4 ± 1.0 MPa surpassed the minimum requirement of standard specification for fabricated UHMWPE in surgical implant application. Overall, melt-blending processing is more suitable for the preparation of UHMWPE/CNF bionanocomposites as exhibited by their characteristics presented herein. A better mechanical interlocking between UHMWPE and CNF at high temperature mixing with kneading was evident through FE-SEM observation, explains the higher mechanical properties of MB-UHMWPE/0.5 as compared to EM-UHMWPE/0.5.

摘要

超高分子量聚乙烯(UHMWPE)纳米复合材料熔融加工的主要障碍在于UHMWPE的高熔体粘度,这可能导致纳米填料的分散和分布不佳。在本研究中,通过两种不同的共混方法制备了UHMWPE/纤维素纳米纤维(UHMWPE/CNF)生物纳米复合材料:(i)在150°C下于三螺杆捏合挤出机中进行熔融共混,以及(ii)在室温下通过乙醇混合进行非熔融共混。结果表明,与纯UHMWPE相比,不含CNF的UHMWPE熔融加工(MB-UHMWPE/0)的屈服强度和杨氏模量分别提高了15%和25%。然而,拉伸强度降低了近一半。另一方面,不含CNF的乙醇混合样品(EM-UHMWPE/0)在所有测试的机械性能上均略有下降。在加入0.5%的CNF时,与纯UHMWPE相比,熔融共混生物纳米复合材料(MB-UHMWPE/0.5)的机械性能得到了改善。还发现,与乙醇混合样品(EM-UHMWPE/0.5)相比,MB-UHMWPE/0.5的屈服强度、断裂伸长率、杨氏模量、韧性和结晶度分别提高了28%、61%、47%和11%。尽管MB-UHMWPE/0.5的拉伸强度有所降低,但其值即28.4±1.0MPa超过了外科植入应用中预制UHMWPE标准规格的最低要求。总体而言,如本文所述的特性所示,熔融共混加工更适合于制备UHMWPE/CNF生物纳米复合材料。通过FE-SEM观察可以明显看出,在高温捏合混合时,UHMWPE和CNF之间有更好的机械互锁,这解释了MB-UHMWPE/0.5相比EM-UHMWPE/0.5具有更高的机械性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aad6/7865645/f4ab9b422002/polymers-13-00404-g001.jpg

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