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反应性纳米填料增强杂化聚脲:纤维素纳米晶在材料制备与表征中的作用

Reactive Nanofiller Reinforced Hybrid Polyurea: The Role of CNC in Material Preparation and Characterization.

作者信息

Duman Kadir, Necolau Madalina Ioana, Bîru Elena Iuliana, Zaharia Anamaria, Iovu Horia

机构信息

Advanced Polymer Materials Group, National University of Science and Technology Politehnica Bucharest, 1-7 Gh. Polizu Street, 011061 Bucharest, Romania.

Academy of Romanian Scientists, Ilfov 3, 050044 Bucharest, Romania.

出版信息

Polymers (Basel). 2025 May 30;17(11):1527. doi: 10.3390/polym17111527.

Abstract

This study presents the development and analysis of hybrid polyurea composite materials. Neat polyurea was reinforced with cellulose nanocrystals (CNCs) and isocyanate-modified CNCs (CNC-ISOs) via a two-step prepolymer process. Introducing CNC considerably increased the mechanical strength and stiffness of the polyurea matrix. The tensile strength increased by up to 16.4%, and the Young modulus improved by approximately 29% compared to the pure polyurea. When CNC was functionalized with isocyanate, the interfacial bonding was further improved, and superior dispersion and load transfer were achieved. At 1.5% CNC-ISO loading, the modulus increased by approximately 128% compared to the unmodified matrix. Comprehensive analyses using FT-IR, XPS, DSC, TGA, DMA, tensile testing, and SEM showed that CNC-ISO films not only achieved higher tensile strength and better thermal stability but also formed a denser polymer network as evidenced by the increased crosslinking density. These findings highlight the importance of tailored nanofiller modification to create advanced polyurea composites with enhanced performance suitable for demanding protective and structural applications.

摘要

本研究介绍了混杂聚脲复合材料的开发与分析。通过两步预聚物工艺,用纤维素纳米晶体(CNC)和异氰酸酯改性的CNC(CNC-ISO)增强纯聚脲。引入CNC显著提高了聚脲基体的机械强度和刚度。与纯聚脲相比,拉伸强度提高了16.4%,杨氏模量提高了约29%。当CNC用异氰酸酯官能化时,界面结合进一步改善,实现了优异的分散和载荷传递。在1.5%的CNC-ISO负载量下,与未改性基体相比,模量提高了约128%。使用FT-IR、XPS、DSC、TGA、DMA、拉伸测试和SEM进行的综合分析表明,CNC-ISO薄膜不仅具有更高的拉伸强度和更好的热稳定性,而且形成了更致密的聚合物网络,交联密度增加证明了这一点。这些发现突出了定制纳米填料改性对于制造具有增强性能、适用于苛刻防护和结构应用的先进聚脲复合材料的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2214/12156978/bf103f8eb258/polymers-17-01527-g001.jpg

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