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Thin Al2O3 barrier coatings grown on bio-based packaging materials by atomic layer deposition

机译:通过原子层沉积在生物基包装材料上生长的薄Al2O3阻隔涂层

摘要

Growing environmental concerns related to the use of synthetic non-biodegradable polymers in the packaging industry have led to the need for new, especially bio-based, materials. Currently, petroleum-based synthetic polymers are widely used due to their relatively low cost and high performance. Biodegradable plastics and fibre-based materials have been proposed as a solution to the waste problems related to these synthetic polymers. Fibre-based packaging materials have many advantages over their non-biodegradable competitors, such as stiffness vs. weight ratio and recyclability. However, poor barrier properties and sensitivity to moisture are the main challenges restricting their use. Application of a thin coating layer is one way to overcome these problems and to improve the barrier properties of such materials. Atomic layer deposition (ALD) is a well suited technique for depositing thin inorganic coatings onto temperature-sensitive materials such as polymer-coated boards and papers and polymer films. In the present work, thin and highly uniform Al2O3 coatings were deposited at relatively low temperatures of 80, 100 and 130 °C onto various bio-based polymeric materials employing the ALD technique. The study demonstrates that a 25-nm-thick ALD-grown Al2O3 coating significantly enhances the oxygen and water vapour barrier performance of these materials. Promising barrier properties were obtained with polylactide-coated board, hemicellulose-coated board as well as various biopolymer (polylactide, pectin and nanofibrillated cellulose) films after coating with a 25-nm-thick Al2O3 layer. Thin Al2O3 coatings can improve the properties of biopolymers, enabling the use of these renewable polymers in the production of high-performance materials for demanding food and pharmaceutical packaging applications. The future roll-to-roll ALD technology for coating polymers with inorganic thin films will increase the industrial potential of these materials and could lead to further opportunities for their commercialization.
机译:与在包装工业中使用合成的不可生物降解的聚合物有关的环境问题日益引起人们对新材料尤其是生物基材料的需求。当前,基于石油的合成聚合物由于其相对较低的成本和高性能而被广泛使用。已经提出了可生物降解的塑料和基于纤维的材料,以解决与这些合成聚合物有关的废物问题。基于纤维的包装材料比其不可生物降解的竞争对手具有许多优势,例如刚度对重量比和可回收性。然而,差的阻隔性能和对湿气的敏感性是限制其使用的主要挑战。薄涂层的施加是克服这些问题并改善这种材料的阻挡性能的一种方法。原子层沉积(ALD)是一种非常适合的技术,用于将薄的无机涂层沉积到温度敏感的材料上,例如聚合物涂层的板,纸和聚合物薄膜。在目前的工作中,采用ALD技术在80、100和130°C的相对较低的温度下,将薄而高度均匀的Al2O3涂层沉积在各种生物基聚合物材料上。研究表明,厚度为25 nm的ALD生长的Al2O3涂层显着增强了这些材料的氧气和水蒸气阻隔性能。在涂有25 nm厚的Al2O3层后,用聚乳酸涂层板,半纤维素涂层板以及各种生物聚合物(聚丙交酯,果胶和纳米原纤化纤维素)薄膜可获得令人满意的阻隔性能。薄的Al2O3涂层可以改善生物聚合物的性能,使这些可再生聚合物可用于生产要求苛刻的食品和药品包装应用的高性能材料。未来用无机薄膜涂覆聚合物的卷对卷ALD技术将增加这些材料的工业潜力,并可能为其商业化带来更多机会。

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    Hirvikorpi Terhi;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en
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