原位掺入二氧化硅颗粒对聚氨酯弹性体性能的影响

IF 2.8 3区 材料科学 Q3 CHEMISTRY, PHYSICAL Silicon Pub Date : 2024-10-02 DOI:10.1007/s12633-024-03162-x
Neetu Tripathi, Ajit Shankar Singh, Jeetendra Kumar Banshiwal, Prashant Pandey, Dibyendu S. Bag
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引用次数: 0

摘要

本研究探讨了将二氧化硅(SiO2)微粒原位掺入硬软分段聚氨酯(PU)基质中,以增强其性能,从而实现潜在的涂层应用。利用傅立叶变换红外光谱(FTIR)、X 射线衍射(XRD)和场发射扫描电子显微镜(FE-SEM)研究了该材料的结构特征。在傅立叶红外光谱中,聚氨酯-Neat 薄膜中位于 1707 和 1726 cm-1 的 C = O 吸收峰转移到了聚氨酯-SiO2 中的 1702 和 1716 cm-1,表明聚氨酯和 SiO2 之间存在 H 键。通过透射率、雾度测量、热重分析(TGA)、差示扫描量热法(DSC)、动态力学分析(DMA)和力学分析,对材料的光学、热学和力学性能进行了评估。结果表明,加入二氧化硅微粒后,热稳定性明显提高,经 DSC 分析,由于加入了二氧化硅微粒,玻璃化转变温度(Tg)从 2.52 °C 上升到 3.0 °C;这些结果得到了 DMA 分析结果的支持。与聚氨酯-Neat(1000 克)相比,掺入二氧化硅的聚氨酯表现出更高的抗划伤性,阈值载荷为 1800 克。与纯聚氨酯相比,聚氨酯-二氧化硅复合材料的最大分解温度(Tmax,393.9 °C)更高,拉伸强度(21.21 兆帕)更大。经 FE-SEM 分析证实,热导率(1913.91 W/cm.oC)和机械性能的提高归因于二氧化硅微粒在基体中的均匀分散。这些研究结果表明,二氧化硅掺杂聚氨酯复合材料有望用于要求提高耐久性和机械应力性能的硬涂层应用。
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Effect of in-situ Incorporated Silica Particles on Properties of Polyurethane Elastomer

This study explores the in-situ incorporation of silica (SiO2) microparticles into a hard-soft segmented polyurethane (PU) matrix to enhance its properties for potential coating applications. The structural characterization of the material was conducted using Fourier Transform Infrared (FTIR) spectroscopy, X-ray Diffraction (XRD), and Field Emission Scanning Electron Microscopy (FE-SEM) studies. In the FTIR spectra, the C = O absorption peaks in urethane at 1707 and 1726 cm−1 for PU-Neat film shift to 1702 and 1716 cm−1 in PU-SiO2, indicating H-bonding between polyurethane and SiO2. The optical, thermal, and mechanical properties of the material were evaluated through transmittance, haze measurement, thermogravimetric analysis (TGA), differential scanning calorimetry (DSC), dynamic mechanical analysis (DMA), and mechanical analysis. The results demonstrated that adding SiO2 microparticles significantly improved the thermal stability, and the glass transition temperature (Tg) increased from 2.52 °C to 3.0 °C due to the incorporation of SiO2 particles, as analyzed from DSC; these results are supported by DMA findings. The silica-incorporated polyurethane demonstrated significantly higher resistance to scratching, with a threshold load of 1800 g compared to PU-Neat (1000 g). The PU-SiO2 composite exhibited a higher maximum decomposition temperature (Tmax, 393.9 °C) and increased tensile strength (21.21 MPa) compared to neat PU. Enhanced thermal conductivity (1913.91 W/cm.oC) and mechanical properties were attributed to the uniform dispersion of silica microparticles within the matrix, as confirmed by FE-SEM analysis. These findings indicate that SiO2-incorporated polyurethane composites are promising candidates for hard coating applications requiring enhanced durability and performance under mechanical stress.

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来源期刊
Silicon
Silicon CHEMISTRY, PHYSICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.90
自引率
20.60%
发文量
685
审稿时长
>12 weeks
期刊介绍: The journal Silicon is intended to serve all those involved in studying the role of silicon as an enabling element in materials science. There are no restrictions on disciplinary boundaries provided the focus is on silicon-based materials or adds significantly to the understanding of such materials. Accordingly, such contributions are welcome in the areas of inorganic and organic chemistry, physics, biology, engineering, nanoscience, environmental science, electronics and optoelectronics, and modeling and theory. Relevant silicon-based materials include, but are not limited to, semiconductors, polymers, composites, ceramics, glasses, coatings, resins, composites, small molecules, and thin films.
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