Zauner, L., Hahn, R., Aschauer, E., Wojcik, T., Davydok, A., Hunold, O., Polcik, P., & Riedl-Tragenreif, H. (2022). Assessing the Fracture and Fatigue Resistance of Nanostructured Thin Films. Social Science Research Network (SSRN). https://doi.org/10.34726/3223
Fatigue failure caused by sustained loading of ductile materials manifests in irreversible motion of dislocations, followed by crack initiation and growth. This contrasts with the failure mechanisms associated with brittle ceramics, such as nanostructured physical vapor deposited thin films, where inhibited dislocation mobility typically leads to interface-controlled damage. Hence, understanding the fatigue response of thin films from a fundamental viewpoint – including altered atomic bonds, crystal structures, and available deformation mechanisms – holds the key to improved durability of coated engineering components. Here, a novel approach utilizing quasi-static and cyclic bending of pre-notched, unstrained microcantilever beams coupled with in-situ synchrotron X-ray diffraction is presented to study the fracture toughness and fatigue properties of thin films under various loading conditions. Investigating a model system of sputter deposited Cr and Cr-based ceramic compounds (CrN, CrB2, and Cr2O3) demonstrates that the fatigue resistance of such thin films is limited by the inherent fracture toughness, irrespective of the prevalent bonding character or crystal structure. Moreover, as revealed by complementary micro-pillar compression tests, the fracture toughness is in clear connection with the elasto-plastic deformation behavior, thus elucidating the wide range of values from 1.6±0.2 up to 4.3±0.3 MPa√m for Cr1.79O3 and Cr1.03B2, respectively. In fact, cantilever cycling close to the critical stress intensity is sustained up to 107 load cycles on all materials, without inducing noticeable material damage, structural or stress-state changes. Our findings contribute key-insights into the underlying mechanisms dictating the damage tolerance of PVD coated components by relating fatigue strength limits to fundamental material properties.
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Forschungsinfrastruktur:
Analytical Instrumentation Center
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Projekttitel:
Oberflächentechnik von hochbeanspruchten Präzisionskomponenten: CDL-SEC (CDG Christian Doppler Forschungsgesellschaft)