Abstract:
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.
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Parts:
[Publication 1]: T. Hirvikorpi, M. Vähä-Nissi, A. Harlin and M. Karppinen, Comparison
of some coating techniques to fabricate barrier layers on packaging
materials, Thin Solid Films 518 (2010) 5463-5466.
© 2010 Elsevier. By permission.[Publication 2]: T. Hirvikorpi, M. Vähä-Nissi, T. Mustonen, E. Iiskola and M. Karppinen,
Atomic layer deposited aluminum oxide barrier coatings for packaging
materials, Thin Solid Films 518 (2010) 2654-2658.
© 2009 Elsevier. By permission.[Publication 3]: T. Hirvikorpi, M. Vähä-Nissi, J. Nikkola, A. Harlin and M. Karppinen,
Thin Al2O3 barrier coatings onto temperature-sensitive packaging
materials by atomic layer deposition, Surface and Coatings Technology,
205 (2011) 5088-5092.
© 2011 Elsevier. By permission.[Publication 4]: T. Hirvikorpi, M. Vähä-Nissi, A. Harlin, J. Marles, V. Miikkulainen and
M. Karppinen, Effect of corona pre-treatment on the performance of gas
barrier layers applied by atomic layer deposition onto polymer-coated
paperboard, Applied Surface Science 257 (2010) 736-740.
© 2010 Elsevier. By permission.[Publication 5]: T. Hirvikorpi, M. Vähä-Nissi, J. Vartiainen, P. Penttilä, J. Nikkola,
A. Harlin, R. Serimaa and M. Karppinen, Effect of heat-treatment on the
performance of gas barrier layers applied by atomic layer deposition
onto polymer-coated paperboard, Journal of Applied Polymer Science
122 (2011) 2221-2227.
© 2011 Wiley Periodicals. By permission.[Publication 6]: T. Hirvikorpi, M. Vähä-Nissi, A. Harlin, M. Salomäki, S. Areva, J.T.
Korhonen and M. Karppinen, Enhanced water vapor barrier properties
for biopolymer films by polyelectrolyte multilayer and atomic layer
deposited Al2O3 double-coating, Applied Surface Science 257 (2011)
9451-9454.
© 2011 Elsevier. By permission.
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