具有潜在阻燃和抗氧化性能的疏水性桐油环氧双功能纳米复合材料的可持续原位合成

Q1 Environmental Science Bioresource Technology Reports Pub Date : 2024-08-06 DOI:10.1016/j.biteb.2024.101928
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引用次数: 0

摘要

研究重点是采用原位法制备环氧纳米复合材料(EPLNCNF)涂层,该涂层由芒果相思木质素(LN)和大麻槿纤维素纳米纤维(CNF)混合组成,具有双重功能。以可持续桐油环氧树脂为基体,0.25 wt. % 异佛尔酮二异氰酸酯(IPDI)为交联剂,通过化学机械法制备了杂化木质素(LN/CNF)。溶液浇注法用于在木材、纸张和玻璃上浇注 EPLNCNF,以进行阻燃测试。对样品进行了标准 ASTM 方法、UL94V、一站式点火和热重分析,推断 EPLNCNF 纳米复合涂层是潜在的阻燃材料。纳米复合材料的表面形态表现出均匀的分散性和致密性。在棒状 CNF 中完整的球形 LN 清晰可见,并占据了原始环氧树脂的间隙。与原始环氧涂层相比,混合 LN/CNF 与 EPLNCNF 纳米复合涂层在环氧基质中协同作用,表现出广泛的交联性、强附着力、疏水性、耐溶剂性和耐化学性、致密性、机械稳定性、无缺陷、膨胀性降低、高结晶度、抗氧化活性和高达 380 °C 的热稳定性。用 DPPH 测定纳米复合材料的抗氧化活性为 73.50%。因此,材料的保质期可以延长,具有潜在的市场价值。
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A sustainable in situ synthesis of hydrophobic tung oil epoxy bifunctional nanocomposites with potential fire retardant and antioxidant properties

The main focus involves an in situ approach for the preparation of epoxy nanocomposite (EPLNCNF) coatings composed of hybrid Acacia mangium lignin (LN) and Hibiscus cannabinus cellulose nanofiber (CNF) for bifunctional purposes. Hybrid moieties (LN/CNF) were prepared by a chemo-mechanical method using sustainable tung oil epoxy as the base matrix and 0.25 wt. % isophorone diisocyanate (IPDI) as the cross-linker. The solution casting method is used to cast EPLNCNFs on wood, paper and glass for fire retardant testing, with coatings developed on wood exhibiting more protection than paper and glass coatings. Standard ASTM methods, UL94V, one-stop ignition, and thermogravimetric analysis were carried out on the samples, and EPLNCNF nanocomposite coatings were inferred to be potential fire-retardant materials. The surface morphology of the nanocomposite exhibited uniform dispersion and compactness. The spherical-shaped LN, which is intact within rod-shaped CNFs, is distinctly visible and occupies the interstitial voids within the pristine epoxy. Compared with pristine epoxy coatings, hybrid LN/CNF work synergistically within the epoxy matrix with EPLNCNF nanocomposite coatings, exhibiting extensive cross-linking, strong adhesion, hydrophobicity, solvent and chemical resistance, compactness, mechanical stability, no defects, decreased swelling, high crystallinity, antioxidant activity and thermal stability up to 380 °C. DPPH was used to determine that the antioxidant activity of the nanocomposite was 73.50 %. As a result, the shelf life of the materials can increase for longer durations with potential market value.

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来源期刊
Bioresource Technology Reports
Bioresource Technology Reports Environmental Science-Environmental Engineering
CiteScore
7.20
自引率
0.00%
发文量
390
审稿时长
28 days
期刊最新文献
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