Literature DB >> 30969286

Biomimetic hard and tough nanoceramic Ti-Al-N film with self-assembled six-level hierarchy.

Michael Meindlhumer1, Jakub Zalesak, Reinhard Pitonak, Juraj Todt, Bernhard Sartory, Manfred Burghammer, Andreas Stark, Norbert Schell, Rostislav Daniel, Julius F Keckes, Mario Lessiak, Arno Köpf, Ronald Weißenbacher, Jozef Keckes.   

Abstract

Nature uses self-assembly of a fairly limited selection of components to build hard and tough protective tissues like nacre and enamel. The resulting hierarchical micro/nanostructures provide decisive toughening mechanisms while preserving strength. However, to mimic microstructural and mechanical characteristics of natural materials in application-relevant synthetic nanostructures has proven to be difficult. Here, we demonstrate a biomimetic synthesis strategy, based on chemical vapour deposition technology, employed to fabricate a protective high-temperature resistant nanostructured ceramic TiAlN thin film with six levels of hierarchy. By using just two variants of gaseous precursors and through bottom-up self-assembly, an irregularly arranged hard and tough multilayer stack was formed, consisting of hard sublayers with herringbone micrograins, separated by tough interlayers with spherical nanograins, respectively composed of lamellar nanostructures of alternating coherent/incoherent, hard/tough, single-/poly-crystalline platelets. Micro- and nanomechanical testing, performed in situ in scanning and transmission electron microscopes, manifests intrinsic toughening mechanisms mediated by five types of interfaces resulting in intergranular, transgranular and cleavage fracture modes with zigzag-like crack patterns at multiple length-scales. The hierarchical 2.7 μm thick film self-assembled during ∼15 minutes of deposition time shows hardness, fracture stress and toughness of ∼31 GPa, ∼7.9 GPa and ∼4.7 MPa m0.5, respectively, as well as phase/microstructural thermal stability up to ∼950/900 °C. The film's microstructural and mechanical characteristics represent a milestone in the production of protective and wear-resistant thin films.

Entities:  

Year:  2019        PMID: 30969286     DOI: 10.1039/c8nr10339a

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  2 in total

1.  Morphology and Mechanical Properties of Fossil Diatom Frustules from Genera of Ellerbeckia and Melosira.

Authors:  Qiong Li; Jürgen Gluch; Zhongquan Liao; Juliane Posseckardt; André Clausner; Magdalena Łępicka; Małgorzata Grądzka-Dahlke; Ehrenfried Zschech
Journal:  Nanomaterials (Basel)       Date:  2021-06-20       Impact factor: 5.076

2.  Stress-controlled decomposition routes in cubic AlCrN films assessed by in-situ high-temperature high-energy grazing incidence transmission X-ray diffraction.

Authors:  M Meindlhumer; S Klima; N Jäger; A Stark; H Hruby; C Mitterer; J Keckes; R Daniel
Journal:  Sci Rep       Date:  2019-12-02       Impact factor: 4.379

  2 in total

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