PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 3, 2026Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials0 citationsOpen Access

In-situ nanomechanical responses of zirconia-containing lithium silicate glass-ceramics

View Full Paper
AJAfifah Z. JuriRBRenan BelliGSGrace De Souza

Key Points

  • Brittle fracture behavior was observed in both pre-crystallized and crystallized zirconia-containing lithium silicate glass-ceramics, revealing distinct fracture mechanisms.
  • The study highlighted significantly lower hardness and Young's modulus in pre-crystallized materials compared to their crystallized counterparts, at 500 mN peak load.
  • In-situ nanoindentation tests conducted inside scanning electron microscopy enabled a real-time assessment of cracking and deformation mechanisms.
  • findings suggest that microstructural variations influence machining efficiency and mechanical stability in zirconia-containing materials.

Abstract

The high hardness and low fracture toughness of zirconia-containing lithium silicate glass ceramics (ZLS) leads to dominant brittle fracture behaviour, which prompts extensive surface and subsurface cracking during machining, reducing long-term stability of dental restorations. This study evaluated the in-situ nanoindentation behaviour of this material class aiming to describe the real-time deformation response and nanomechanical mechanisms of cracking in ZLS according to their crystallized state. The in-situ nanoindentation tests on polished pre-crystallized and crystallized ZLS (Vita Suprinity PC, Vita Zahnfabrik, Germany) were performed inside a scanning electron microscopy (SEM) at 500 mN peak load and 2 mN/s loading rate. SEM images were taken at different stages of loading-unloading cycles to correlate morphological responses to force-displacement events in real-time. Pop-in events in force displacement curves were matched to edge chipping in pre-crystallized state and to radial cracking in crystallized ZLS. Although both pre-crystallized and crystallized ZLS materials exhibited brittle fracture behavior under indentation, their microstructural responses revealed distinct fracture mechanisms. In the pre-crystallized ZLS, the brittle fracture was accompanied by edge chipping, rupture and radial cracks. In contrast, crystallized ZLS had shear-band, pile up, and radial cracks. Pre-crystallized ZLS had significantly lower hardness, Young's modulus, resistance to machining-induced cracking, and maximum shear stress compared with the crystallized state. Further, the larger indentation imprint volume observed in the pre-crystallized ZLS suggests higher material removal efficiency during machining. This study highlights the microstructure-property dependence of ZLS materials, providing valuable insights into their micromechanics upon abrasive machining.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Juri et al. (2026) studied this question.

synapsesocial.com/papers/69a7673bbadf0bb9e87e01b3https://doi.org/10.1016/j.jmbbm.2026.107365
Ask AI
Helpful
Bookmark
Share
View Full Paper