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Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ

The dentino-enamel junction (DEJ) connects enamel, that covers the outer surface of a tooth, to a thicker underlying dentin. The DEJ is a critical interface that permits joining these materials that have widely dissimilar mechanical properties. AFM-based nanoindentation and Raman microspectroscopy w...

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Autores principales: Gallagher, R. R., Balooch, M., Balooch, G., Wilson, R. S., Marshall, S. J., Marshall, G. W.
Formato: Texto
Lenguaje:English
Publicado: SAGE-Hindawi Access to Research 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2951110/
https://www.ncbi.nlm.nih.gov/pubmed/20948572
http://dx.doi.org/10.4061/2010/256903
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author Gallagher, R. R.
Balooch, M.
Balooch, G.
Wilson, R. S.
Marshall, S. J.
Marshall, G. W.
author_facet Gallagher, R. R.
Balooch, M.
Balooch, G.
Wilson, R. S.
Marshall, S. J.
Marshall, G. W.
author_sort Gallagher, R. R.
collection PubMed
description The dentino-enamel junction (DEJ) connects enamel, that covers the outer surface of a tooth, to a thicker underlying dentin. The DEJ is a critical interface that permits joining these materials that have widely dissimilar mechanical properties. AFM-based nanoindentation and Raman microspectroscopy were used to define the width and composition of human molar DEJ. Indentation elastic modulus and hardness of enamel, dentin, and DEJ were determined along lines of indents made at 2 μm intervals across the DEJ. Indents made at maximum loads at each end of the indent lines were used to make visible markers allowing Raman microspectroscopy at 1 μm intervals across the DEJ, while using the nanoindent markers for orientation and location. Functional DEJ width estimates were made based on results from nanoindentation and Raman microspectroscopy. DEJ width estimates ranged from 4.7 (±1.2) μm to 6.1 (±1.9) μm based on hardness and 4.9 (±1.1) μm to 6.9 (±1.9) μm based on modulus. DEJ width based on Raman peak intensity variations were 8.0 (±3.2) μm to 8.5 (±3.1) μm based on the phosphate peak, and 7.6 (±3.2) μm to 8.0 (±2.6) μm for C–H stretching mode. These estimates are in the range of DEJ width estimates reported using nanoindentation.
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spelling pubmed-29511102010-10-14 Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ Gallagher, R. R. Balooch, M. Balooch, G. Wilson, R. S. Marshall, S. J. Marshall, G. W. J Dent Biomech Research Article The dentino-enamel junction (DEJ) connects enamel, that covers the outer surface of a tooth, to a thicker underlying dentin. The DEJ is a critical interface that permits joining these materials that have widely dissimilar mechanical properties. AFM-based nanoindentation and Raman microspectroscopy were used to define the width and composition of human molar DEJ. Indentation elastic modulus and hardness of enamel, dentin, and DEJ were determined along lines of indents made at 2 μm intervals across the DEJ. Indents made at maximum loads at each end of the indent lines were used to make visible markers allowing Raman microspectroscopy at 1 μm intervals across the DEJ, while using the nanoindent markers for orientation and location. Functional DEJ width estimates were made based on results from nanoindentation and Raman microspectroscopy. DEJ width estimates ranged from 4.7 (±1.2) μm to 6.1 (±1.9) μm based on hardness and 4.9 (±1.1) μm to 6.9 (±1.9) μm based on modulus. DEJ width based on Raman peak intensity variations were 8.0 (±3.2) μm to 8.5 (±3.1) μm based on the phosphate peak, and 7.6 (±3.2) μm to 8.0 (±2.6) μm for C–H stretching mode. These estimates are in the range of DEJ width estimates reported using nanoindentation. SAGE-Hindawi Access to Research 2009-08-12 /pmc/articles/PMC2951110/ /pubmed/20948572 http://dx.doi.org/10.4061/2010/256903 Text en Copyright © 2010 R. R. Gallagher et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Gallagher, R. R.
Balooch, M.
Balooch, G.
Wilson, R. S.
Marshall, S. J.
Marshall, G. W.
Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ
title Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ
title_full Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ
title_fullStr Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ
title_full_unstemmed Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ
title_short Coupled Nanomechanical and Raman Microspectroscopic Investigation of Human Third Molar DEJ
title_sort coupled nanomechanical and raman microspectroscopic investigation of human third molar dej
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2951110/
https://www.ncbi.nlm.nih.gov/pubmed/20948572
http://dx.doi.org/10.4061/2010/256903
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