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Teeth: From Materials Science to Dentistry and Evolutionary Biology

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Structure of human tooth near the enamel/dentin junction. Tuft-like features extending into enamel are closed, protein-filled microcracks formed when teeth push their way through the gums. Note how the tufts are deflected at the fringes, where (faintly visible) mineralized rods are intertwined into what is called a decussation pattern. These tufts provide sources for fractures. Credit: Courtesy of Tim Bromage, NYU
Longitudinal cracks in human teeth. We all have them, especially those of us who are longer in years. This image is from a younger patient. Credit: NIST
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Experimental observations of fracture patterns. Longitudinal cracks generated by application of force at cusp by a hard contact. (a) Extracted human molar, (b) sea otter molar. (Sea otters are often used as proxies for human dentition, owing to a similar “bunodont” geometry, i.e., with rounded cusps in their molar teeth.) Longitudinal cracks generated by application of force at cusp by a hard contact. Simulation of the fracture modes in glass shells infilled with resin, loaded at top with © hard indenter and (d) soft indenter. Crack propagation is fully contained within an enamel coat, and proceeds along the side walls in a highly stable manner. Biologists analyze such patterns to infer diets of different fossil species. Credit: NIST
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National Institute of Standards and Technology
National Institute of Standards and Technology

Written by National Institute of Standards and Technology

NIST promotes U.S. innovation by advancing measurement science, standards and technology in ways that enhance economic security and improve our quality of life.