Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10431795 | Journal of Biomechanics | 2014 | 8 Pages |
Abstract
Tooth enamel is a very brittle material; however it has the ability to sustain cracks without suffering catastrophic failure throughout the lifetime of mechanical function. We propose that the nanostructure of enamel can play a significant role in defining its unique mechanical properties. Accordingly we analyzed the nanostructure and chemical composition of a group of teeth, and correlated it with the crack resistance of the same teeth. Here we show how the dimensions of apatite nanocrystals in enamel can affect its resistance to crack propagation. We conclude that the aspect ratio of apatite nanocrystals in enamel determines its resistance to crack propagation. According to this finding, we proposed a new model based on the Hall-Petch theory that accurately predicts crack propagation in enamel. Our new biomechanical model of enamel is the first model that can successfully explain the observed variations in the behavior of crack propagation of tooth enamel among different humans.
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Authors
Elnaz Ghadimi, Hazem Eimar, Jun Song, Benedetto Marelli, Ovidiu Ciobanu, Mohamed-Nur Abdallah, Christoph Stähli, Showan N. Nazhat, Hojatollah Vali, Faleh Tamimi,