Plasma-Assisted ALD of an Al_2O_3 Permeation Barrier Layer on Plastic

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Atomic layer deposition(ALD) technique is used in the preparation of organic/inorganic layers,which requires uniform surfaces with their thickness down to several nanometers.For film with such thickness,the growth mode defined as the arrangement of clusters on the surface during the growth is of significance.In this work,Al 2 O 3 thin film was deposited on various interfacial species of pre-treated polyethylene terephthalate(PET,12 μm) by plasma assisted atomic layer deposition(PA-ALD),where trimethyl aluminium was used as the Al precursor and O 2 as the oxygen source.The interfacial species,-NH 3,-OH,and-COOH as well as SiCHO(derived from monomer of HMDSO plasma),were grafted previously by plasma and chemical treatments.The growth mode of PA-ALD Al 2 O 3 was then investigated in detail by combining results from in-situ diagnosis of spectroscopic ellipsometry(SE) and ex-situ characterization of as-deposited layers from the morphologies scanned by atomic force microscopy(AFM).In addition,the oxygen transmission rates(OTR) of the original and treated plastic films were measured.The possible reasons for the dependence of the OTR values on the surface species were explored. Atomic layer deposition (ALD) technique is used in the preparation of organic / inorganic layers, which requires uniform surfaces with their thickness down to several nanometers. For film with such thickness, the growth mode defined as the arrangement of clusters on the surface during the growth is of significance.In this work, Al 2 O 3 thin film was deposited on various interfacial species of pre-treated polyethylene terephthalate (PET, 12 μm) by plasma assisted atomic layer deposition (PA-ALD), where trimethyl aluminum was used as the Al precursor and O 2 as the oxygen source. The interfacial species, -NH 3, -OH, and -COOH as well as SiCHO (derived from monomer of HMDSO plasma), were grafted previously by plasma and chemical treatments. mode of PA-ALD Al 2 O 3 was then investigated in detail by combining results from in-situ diagnosis of spectroscopic ellipsometry (SE) and ex-situ characterization of as-deposited layers from the morphologies scanned by atomic force microscopy (AFM). In additi on, the oxygen transmission rates (OTR) of the original and treated plastic films were measured. The possible reasons for the dependence of the OTR values ​​on the surface species were explored.
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