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调控磷酸化纤维素纳米纤维基薄膜的纳米尺度性质以获得用于易燃固体材料的高效防火涂层。

Tuning the Nanoscale Properties of Phosphorylated Cellulose Nanofibril-Based Thin Films To Achieve Highly Fire-Protecting Coatings for Flammable Solid Materials.

机构信息

Dipartimento di Scienza Applicata e Tecnologia , Politecnico di Torino, Sede di Alessandria , Viale Teresa Michel 5 , 15121 Alessandria , Italy.

Cellutech AB , Greenhouse Laboratories , Teknikringen 38A , 114 28 Stockholm , Sweden.

出版信息

ACS Appl Mater Interfaces. 2018 Sep 26;10(38):32543-32555. doi: 10.1021/acsami.8b10309. Epub 2018 Sep 11.

Abstract

Ultrathin nanocomposite films were prepared by combining cellulose nanofibrils (CNFs) prepared from phosphorylated pulp fibers (P-CNF) with montmorillonite (MMT), sepiolite (Sep) clay, or sodium hexametaphosphate (SHMP). The flame-retardant and heat-protective capability of the prepared films as casings for a polyethylene (PE) film was investigated. Heating the coated PE in air revealed that the polymer film was thoroughly preserved up to at least 300 °C. The P-CNF/MMT coatings were also able to completely prevent the ignition of the PE film during cone calorimetry, but neither the P-CNF/Sep nor the P-CNF/SHMP coating could entirely prevent PE ignition. This was explained by the results from combined thermogravimetry Fourier transform infrared spectroscopy, which showed that the P-CNF/MMT film was able to delay the release of PE decomposition volatiles and shift its thermal degradation to a higher temperature. The superior flame-retardant performance of the P-CNF/MMT films is mainly attributed to the unique compositional and structural features of the film, where P-CNF is responsible for increasing the char formation, whereas the MMT platelets create excellent barrier and thermal shielding properties by forming inorganic lamellae within the P-CNF matrix. These films showed a tensile strength of 304 MPa and a Young's modulus of 15 GPa with 10 wt % clay so that this composite film was mechanically stronger than the previously prepared CNF/clay nanopapers containing the same amount of clay.

摘要

通过将磷酸化纸浆纤维(P-CNF)制备的纤维素纳米纤维(CNF)与蒙脱土(MMT)、海泡石(Sep)粘土或六偏磷酸钠(SHMP)结合,制备了超薄纳米复合膜。研究了制备的薄膜作为聚乙烯(PE)薄膜套管的阻燃和耐热性能。在空气中加热涂覆的 PE 表明,聚合物薄膜至少在 300°C 时可以完全保存。P-CNF/MMT 涂层也能够在锥形量热计中完全阻止 PE 薄膜的点燃,但 P-CNF/Sep 和 P-CNF/SHMP 涂层都不能完全阻止 PE 的点燃。这可以通过热重傅里叶变换红外光谱的结果来解释,结果表明 P-CNF/MMT 薄膜能够延迟 PE 分解挥发物的释放,并将其热降解转移到更高的温度。P-CNF/MMT 薄膜的优异阻燃性能主要归因于该薄膜的独特组成和结构特征,其中 P-CNF 负责增加炭形成,而 MMT 片层通过在 P-CNF 基质中形成无机层来产生出色的阻隔和热屏蔽性能。这些薄膜的拉伸强度为 304 MPa,杨氏模量为 15 GPa,含有 10wt%的粘土,因此与含有相同量粘土的先前制备的 CNF/粘土纳米纸相比,这种复合膜具有更强的机械强度。

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