Effect of the incorporation of hydroxyapatite on the diametral tensile strength of conventional and hybrid glass ionomer cements.

Diametral tensile strength Glass ionomer cement Glass powder Hydroxyapatite Raman spectroscopy

Journal

Odontology
ISSN: 1618-1255
Titre abrégé: Odontology
Pays: Japan
ID NLM: 101134822

Informations de publication

Date de publication:
Oct 2021
Historique:
received: 13 02 2021
accepted: 07 06 2021
pubmed: 12 6 2021
medline: 28 8 2021
entrez: 11 6 2021
Statut: ppublish

Résumé

The objective was to evaluate the effect of the incorporation of calcium hydroxyapatite particles (HAp) in the diametral tensile strength of a conventional type II glass ionomer (GC Gold Label 2) and a resin-modified glass ionomer cement (GC Gold Label 2 LC R). Two experimental HAp (E1HAp or E2HAp) were synthesized and characterized using X-ray diffraction and Confocal Raman spectroscopy. Both HAp were added into the powder of a conventional or resin-modified glass ionomer cement at 5 or 10 wt.%. A commercial HAp (CHAp) was used as reference material. For each glass ionomer cement, a group without the incorporation of HAp was used as a control. A universal testing machine was used for the mechanical test. The results were analyzed through a two-way ANOVA test followed by a complementary Tukey test. For all analyzes, the level of significance was set at α = 0.05. The average particle size for E1Hap was 15 µm, E2HAp was 35 μm and for CHAp was 1 µm. For conventional GIC, the addition of 10% E1HAp and 5% CHAp significantly increased the diametral tensile strength values (p ≤ 0.005). On the other hand, for the resin-modified GIC, except for the 5% E2HAp group, all experimental groups significantly reduced the values of diametral tensile strength (p ≤ 0.007). The addition of HAp improved the mechanical properties only for the conventional glass ionomer cement.

Identifiants

pubmed: 34114136
doi: 10.1007/s10266-021-00624-1
pii: 10.1007/s10266-021-00624-1
doi:

Substances chimiques

Glass Ionomer Cements 0
Durapatite 91D9GV0Z28

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

904-911

Subventions

Organisme : Comisión Sectorial de Investigación Científica
ID : PAIE

Informations de copyright

© 2021. The Society of The Nippon Dental University.

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Auteurs

Matias Mederos (M)

Department of Dental Materials, School of Dentistry, Universidad de La República, Montevideo, Uruguay.

Carlos Enrique Cuevas-Suarez (CE)

Laboratory of Dental Materials, Academic Area of Dentistry, Autonomous University of Hidalgo State, Pachuca, México.

Walter Sanchez (W)

School of Dentistry, Universidad de La República, Montevideo, Uruguay.

Pablo Miranda (P)

Technologic Pole of Pando, School of Chemistry, Universidad de La República, Canelones, Uruguay.

Alejandro Francia (A)

Department of General and Oral Physiology, School of Dentistry, Universidad de La República, Montevideo, Uruguay.

Helena Pardo (H)

Technologic Pole of Pando, School of Chemistry, Universidad de La República, Canelones, Uruguay.

Juan Pablo Villanueva-Stark (JP)

Technologic Pole of Pando, School of Chemistry, Universidad de La República, Canelones, Uruguay.

Marcelo Kreiner (M)

Department of General and Oral Physiology, School of Dentistry, Universidad de La República, Montevideo, Uruguay.

Guillermo Grazioli (G)

Department of Dental Materials, School of Dentistry, Universidad de La República, Montevideo, Uruguay. ggrazioli@gmail.com.

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