Thermal, electrical, morphological and hydrophobic properties of bio-silica reinforced bio-benzoxazine nanocomposites

IF 3.674 4区 工程技术 Q1 Engineering
Chandramohan Ayyavu, Parthiban Rangasamy, Ponnusamy Senthil Kumar, Sathishkumar Kannaiyan, Alagar Muthukaruppan, Dinakaran Kannaiyan
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引用次数: 2

Abstract

In this study, we have developed bio-based nanocomposites of polybenzoxazine from bio-benzoxazine resins (C-Fu-BZ and E-Fu-BZ) that are armored with varying weight percentages (1, 3, 5, and 7 wt%) of functionalized silica from cow manure (FCMS). These materials are intended for applications that call for high performance materials. Fourier-transform infrared was used to determine the molecular structure of benzoxazines (FTIR). Eugenol-based matrices and composites had superior heat stability than bio-benzoxazines (C-Fu-PBZ and E-Fu-PBZ) and bio-benzoxazine composites in terms of morphology and water contact angle. 1 weight percent of bio-silica-loaded C-Fu-PBZ at 1 MHz was 3.34 for the composite. The 3, 5, and 7 weight percents of FCMS embedded C-Fu-PBZ composites are also discovered to be 2.86, 2.27, and 1.62, respectively. The dielectric constant values for E-Fu-PBZ and 1, 3, and 5 weight percent of FCMS-loaded E-Fu PBZ composites are 4.73, 4.05, 3.57, 2.82, and 2.16 respectively. The contact angle for C-Fu-PBZ reinforced with 1 wt% FCMS is 96°, whereas the contact angles for C-Fu-PBZ reinforced with 3, 5, and 7 wt% bio-silica were found to be 103°, 114°, and 126°, respectively. The E-Fu-PBZ biocomposites values are similarly 86°, 91°, 99°, and 108°. The cardanol-based polybenzoxazine bio-composites have greater values of water contact angle than the eugenol-based polybenzoxazines among the C-Fu-PBZ and E-Fu-PBZ matrices and FCMS-loaded composites. The FCMS distributions and uniform dispersion in the C-Fu-PBZ and E-Fu-PBZ polybenzoxazine matrices were seen in the TEM pictures. Data obtained from different studies for bio-based benzoxazines (C-Fu-BZ and E-Fu-BZ) indicate that the polybenzoxazine matrices and their composites have excellent thermal stability and good hydrophobic behavior suitable to employ them for coatings materials for different industrial products.

Abstract Image

生物二氧化硅增强生物苯并恶嗪纳米复合材料的热、电、形态学和疏水性
在这项研究中,我们从生物苯并恶嗪树脂(C-Fu-BZ和E-Fu-BZ)中开发了聚苯并恶嗪的生物基纳米复合材料,并用不同重量百分比(1、3、5和7 wt%)的牛粪功能化二氧化硅(FCMS)包裹。这些材料用于要求高性能材料的应用。采用傅里叶变换红外光谱(FTIR)测定了苯并恶嗪的分子结构。丁香酚基基质和复合材料在形貌和水接触角方面均优于生物苯并恶嗪(C-Fu-PBZ和E-Fu-PBZ)和生物苯并恶嗪复合材料。生物硅负载的C-Fu-PBZ在1 MHz下的重量百分比为3.34。FCMS包埋的C-Fu-PBZ复合材料的重量百分比分别为2.86、2.27和1.62。负载fcms的E-Fu-PBZ复合材料的介电常数分别为4.73、4.05、3.57、2.82和2.16。1 wt% FCMS增强C-Fu-PBZ的接触角为96°,而3 wt%、5 wt%和7 wt%生物硅增强C-Fu-PBZ的接触角分别为103°、114°和126°。E-Fu-PBZ生物复合材料的值分别为86°、91°、99°和108°。在C-Fu-PBZ和E-Fu-PBZ基质和fcms负载复合材料中,腰果酚基聚苯并恶嗪生物复合材料的水接触角值大于丁香酚基聚苯并恶嗪。TEM图显示了C-Fu-PBZ和E-Fu-PBZ聚苯并恶嗪基质的FCMS分布和均匀分散。对生物基苯并恶嗪(C-Fu-BZ和E-Fu-BZ)的不同研究数据表明,聚苯并恶嗪基质及其复合材料具有优异的热稳定性和良好的疏水性,适合用于不同工业产品的涂层材料。
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来源期刊
Applied Nanoscience
Applied Nanoscience Materials Science-Materials Science (miscellaneous)
CiteScore
7.10
自引率
0.00%
发文量
430
期刊介绍: Applied Nanoscience is a hybrid journal that publishes original articles about state of the art nanoscience and the application of emerging nanotechnologies to areas fundamental to building technologically advanced and sustainable civilization, including areas as diverse as water science, advanced materials, energy, electronics, environmental science and medicine. The journal accepts original and review articles as well as book reviews for publication. All the manuscripts are single-blind peer-reviewed for scientific quality and acceptance.
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