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用于改善氧气阻隔性能的混合三水铝石纳米片/纤维素纳米晶体多层涂层

Hybrid Gibbsite Nanoplatelet/Cellulose Nanocrystal Multilayered Coatings for Oxygen Barrier Improvement.

作者信息

Chemin Maud, Heux Laurent, Guérin David, Crowther-Alwyn Laura, Jean Bruno

机构信息

Univ. Grenoble Alpes, CNRS, CERMAV, Grenoble, France.

Centre Technique du Papier, Functional Products and Surfaces, Grenoble, France.

出版信息

Front Chem. 2019 Jul 17;7:507. doi: 10.3389/fchem.2019.00507. eCollection 2019.

Abstract

We have investigated the ability of multilayered hybrid thin films of cellulose nanocrystals (CNCs) and gibbsite nanoplatelets (GNPs) to be built by the layer-by-layer (LbL) technique onto substrates selected for packaging applications, and to improve the oxygen barrier properties. Using complementary structural characterization techniques, namely atomic force microscopy, ellipsometry, and spectral reflectance, we show that when deposited onto model silicon substrates these hybrid films were homogenous and of reduced porosity, and were comprised of alternately deposited monolayers of GNPs and CNCs. The successful deposition of such homogeneous and dense hybrid thin films onto various types of flexible substrates showing different chemical compositions, hydrophilicity, and surface morphology, ranging from cardboard to smart paper, polyethylene (PE) films, and PE-coated cardboard was also confirmed by scanning electron microscopy observations. In view of the diversity of these substrates we could confirm the remarkable robustness of such a deposition process, likely due to (i) the adaptability of the LbL assembling technique and (ii) the strong electrostatic and hydrogen bonding interactions between GNPs and CNCs. The measurement of the oxygen transmission rate (OTR) at 23°C and 50% RH showed that the oxygen barrier properties of the bare substrates could be significantly improved (e.g., 75% decrease of the OTR) after the deposition of such thin (<100 nm) multilayered hybrid films. This lowered permeability was tentatively attributed to the highly tortuous morphology of the coating, acting to impede the gas diffusion. These partially biosourced very thin films stand as good candidates for using as coatings showing high oxygen barrier performance.

摘要

我们研究了通过逐层(LbL)技术将纤维素纳米晶体(CNC)和三水铝石纳米片(GNP)的多层混合薄膜构建在为包装应用选择的基材上,并改善其氧气阻隔性能的能力。使用互补的结构表征技术,即原子力显微镜、椭偏仪和光谱反射率,我们表明,当沉积在模型硅基板上时,这些混合薄膜是均匀的,孔隙率降低,并且由交替沉积的GNP和CNC单层组成。扫描电子显微镜观察也证实了这种均匀且致密的混合薄膜成功沉积在各种类型的柔性基材上,这些基材具有不同的化学成分、亲水性和表面形态,从纸板到智能纸、聚乙烯(PE)薄膜以及PE涂层纸板。鉴于这些基材的多样性,我们可以确认这种沉积过程具有显著的稳健性,这可能归因于(i)LbL组装技术的适应性和(ii)GNP与CNC之间强烈的静电和氢键相互作用。在23°C和50%相对湿度下对氧气透过率(OTR)的测量表明,在沉积这种薄(<100 nm)的多层混合薄膜后,裸基材的氧气阻隔性能可以得到显著改善(例如,OTR降低75%)。这种渗透率的降低初步归因于涂层高度曲折的形态,它起到阻碍气体扩散的作用。这些部分来源于生物的非常薄的薄膜是用作具有高氧气阻隔性能涂层的良好候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f3e/6650769/6b0ca4ae1545/fchem-07-00507-g0001.jpg

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