Teeth Microcracks Research: Towards Multi-Modal Imaging

Author:

Dumbryte Irma1ORCID,Narbutis Donatas2ORCID,Androulidaki Maria3ORCID,Vailionis Arturas45ORCID,Juodkazis Saulius67ORCID,Malinauskas Mangirdas8ORCID

Affiliation:

1. Institute of Odontology, Vilnius University, LT-08217 Vilnius, Lithuania

2. Institute of Theoretical Physics and Astronomy, Vilnius University, LT-10222 Vilnius, Lithuania

3. Microelectronics Research Group, Institute of Electronic Structure & Laser, Foundation for Research and Technology FORTH-Hellas, 70013 Heraklion, Crete, Greece

4. Stanford Nano Shared Facilities, Stanford University, Stanford, CA 94305, USA

5. Department of Physics, Kaunas University of Technology, LT-51368 Kaunas, Lithuania

6. Optical Sciences Centre and ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia

7. WRH Program International Research Frontiers Initiative (IRFI), Tokyo Institute of Technology, Nagatsuta-cho, Midori-ku, Yokohama 226-8503, Japan

8. Laser Research Center, Vilnius University, LT-10223 Vilnius, Lithuania

Abstract

This perspective is an overview of the recent advances in teeth microcrack (MC) research, where there is a clear tendency towards a shift from two-dimensional (2D) to three-dimensional (3D) examination techniques, enhanced with artificial intelligence models for data processing and image acquisition. X-ray micro-computed tomography combined with machine learning allows 3D characterization of all spatially resolved cracks, despite the locations within the tooth in which they begin and extend, and the arrangement of MCs and their structural properties. With photoluminescence and micro-/nano-Raman spectroscopy, optical properties and chemical and elemental composition of the material can be evaluated, thus helping to assess the structural integrity of the tooth at the MC site. Approaching tooth samples having cracks from different perspectives and using complementary laboratory techniques, there is a natural progression from 3D to multi-modal imaging, where the volumetric (passive: dimensions) information of the tooth sample can be supplemented by dynamic (active: composition, interaction) image data. Revelation of tooth cracks clearly shows the need to re-assess the role of these MCs and their effect on the structural integrity and longevity of the tooth. This provides insight into the nature of cracks in natural hard materials and contributes to a better understanding of how bio-inspired structures could be designed to foresee crack propagation in biosolids.

Funder

EU LASERLAB-EUROPE

University Excellence Initiative programme

Publisher

MDPI AG

Subject

Bioengineering

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