In vitro assessment of a new block design for implant crowns with functional gradient fabricated with resin composite and zirconia insert
Autor/a
Data de publicació
2024ISSN
1996-1944
Resum
This study aims to evaluate and compare the mechanical resistance, fatigue behavior and fracture behavior of different CAD/CAM materials for implant crowns. Eighty-eight implant crowns cemented-screwed with four sample groups: two monolithic G1 Zirconia (control) and G3 composite and two bi-layered G2 customized zirconia/composite and G4 prefabricated zirconia/composite. All static and dynamic mechanical tests were conducted at 37 °C under wet conditions. The fractographic evaluation of deformed and/or fractured samples was evaluated via electron microscopy. Statistical analysis was conducted using Wallis tests, which were performed depending on the variables, with a confidence interval of 95%, (p < 0.05). The Maximum Fracture Strength values displayed by the four groups of samples showed no statistically significant differences. The crown–abutment material combination influenced the failure mode of the restoration, transitioning from a fatigue fracture type located at the abutment–analog connection for monolithic materials (G1 and G3) to a brittle fracture located in the crown for bi-layered materials (G2 and G4). The use of layered crown materials with functional gradients appears to protect the crown/abutment connection area by partially absorbing the applied mechanical loads. This prevents catastrophic mechanical failures, avoiding long chairside time to solve these kinds of complications.
Tipus de document
Article
Versió del document
Versió publicada
Llengua
Anglès
Matèries (CDU)
616.3 - Patologia de l'aparell digestiu. Odontologia
Paraules clau
Pàgines
22
Publicat per
MDPI
Col·lecció
17; 15
Publicat a
Materials
Citació
Gutíerrez Robledo, Nicolás; Punset fuste, Miquel; Rodríguez Contreras, Alejandra [et al.]. In vitro assessment of a new block design for implant crowns with functional gradient fabricated with resin composite and zirconia insert. Materials, 2024, 17(15), 3815. Disponible en: <https://www.mdpi.com/1996-1944/17/15/3815>. Fecha de acceso: 28 feb. 2025. DOI: 10.3390/ma17153815
Nota
The authors acknowledge the financial support received from the Ministry of Science and Innovation of Spain for financial support through the PID2021- 125150OB-I00 project, cofounded by the EU through the European Regional Development Funds (MINECO-FEDER, EU). The authors are thankful to both Generalitat de Cataluña and the Agència de Gestioó d’Ajuts Universitaris i de Recerca (2021 SGR 01368) for financial support. The authors also wish to thank the Ministry of Science and Innovation of Spain for financial support through the María de Maeztu Program for Units of Excellence CEX2023-001300-M funded by MICIU/AEI/10.13039/501100011033.
Aquest element apareix en la col·lecció o col·leccions següent(s)
- Odontologia [334]
Drets
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Excepte que s'indiqui una altra cosa, la llicència de l'ítem es descriu com https://creativecommons.org/licenses/by/4.0/