| Literature DB >> 28680798 |
Darius Tytko1, Pyuck-Pa Choi1,2, Dierk Raabe1.
Abstract
We report on the oxidation behavior of AlN/CrN multilayers at 900 °C, deposited by radio frequency magnetron sputtering. It is shown that oxidation in this system is controlled by diffusion of Cr towards the surface and formation of Cr2O3. Cr diffusion is found to mainly occur along grain boundaries. Thus, coherent cubic AlN/CrN multilayer regions with coarse columnar grain structures are found to be oxidation resistant, whereas regions decomposed into hexagonal AlN/cubic CrN are prone to oxidation.Entities:
Keywords: Atom probe tomography; Hard coatings; Multi layers; Oxidation; Transmission electron microscopy
Year: 2017 PMID: 28680798 PMCID: PMC5487816 DOI: 10.1186/s40580-017-0109-y
Source DB: PubMed Journal: Nano Converg ISSN: 2196-5404
Fig. 1a STEM-BF cross section of the as-deposited coating showing columnar grains within the c-AlN/CrN region. The inset shows a SAED pattern taken from the grain marked by the white circle; b HR-TEM image of the c-AlN/CrN multilayers corresponding to the white rectangle in a. Coherency between the layers is evident
Fig. 2In-plain view of the c-AlN/CrN multilayers annealed for 15 min at 900 °C acquired by STEM-HAADF. The bright lines correspond to the CrN wetted columnar GBs. Hexagonal AlN (dark contrast) forms preferentially at GB junctions. Regions with low and high number densities of GB are apparent (Region 1 and 2, respectively)
Fig. 3STEM-BF cross section views of the coating annealed for 60 min at 900 °C. TEM lamellas were prepared from different regions of the same sample containing a low (a) and high (b) number density of GB (compare Region 1 and 2 in Fig. 2). Regions with a high number of GBs are subject to pronounced oxidation
Fig. 4STEM HAADF and EDS mappings of the c-AlN/CrN superlattice annealed for 60 min at 900 °C