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Physicochemical and bioactive properties of innovative resin-based materials containing functional halloysite-nanotubes fillers
被引:31
作者:
Degrazia, Felipe Weidenbach
[1
]
Branco Leitune, Vicente Castelo
[1
]
Takimi, Antonio Shigueaki
[2
]
Collares, Fabricio Mezzomo
[1
]
Sauro, Salvatore
[3
]
机构:
[1] Univ Fed Rio Grande do Sul, Fac Odontol, Lab Mat Dent, Rua Ramiro Barcelos 2492, BR-90035003 Porto Alegre, RS, Brazil
[2] Univ Fed Rio Grande do Sul, Escola Engn, Dept Engn Met, Av Osvaldo Aranha 99, BR-90035190 Porto Alegre, RS, Brazil
[3] Univ CEU Cardenal Herrera, Fac Ciencias Salud, Dept Odontol, C Del Pozos S-N, Valencia 46115, Spain
关键词:
Nanotubes;
Triclosan;
Resin composite;
Bioactivity;
Physicochemical properties;
TRANSFER RADICAL POLYMERIZATION;
CROSS-LINK DENSITY;
COMPOSITE RESTORATIONS;
MECHANICAL-PROPERTIES;
IN-VIVO;
DENTIN;
ADHESIVE;
INTERFACES;
TRICLOSAN;
NANOCOMPOSITE;
D O I:
10.1016/j.dental.2016.06.012
中图分类号:
R78 [口腔科学];
学科分类号:
1003 ;
摘要:
Objective. This study aimed to assess the degree of conversion, microhardness, solvent degradation, contact angle, surface free energy and bioactivity (e.g., mineral precipitation) of experimental resin-based materials containing, pure or triclosan-encapsulated, aluminosilicate-(halloysite) nanotubes. Methods. An experimental resin blend was prepared using bis-GMA/TEGDMA, 75/25 wt% (control). Halloysite nanotubes (HNT) doped with or without triclosan (TCN) were first analyzed using transmission electron microscopy (TEM). HNT or HNT/TCN fillers were incorporated into the resin blend at different concentrations (5, 10, and 20 wt%). Seven experimental resins were created and the degree of conversion, microhardness, solvent degradation and contact angle were assessed. Bioactive mineral precipitation induced by the experimental resins was evaluated through Raman spectroscopy and SEM-EDX. Results. TEM showed a clear presence of TCN particles inside the tubular lumen and along the outer surfaces of the halloysite nanotubes. The degree of conversion, surface free energy, microhardness, and mineral deposition of polymers increased with higher amount of HNTs. Conversely, the higher the amount (20 wt%) of TCN-loaded HNTs the lower the microhardness of the experimental resins. Significance. The incorporation of pure or TCN-loaded aluminosilicate-(halloysite) nano tubes into resin-based materials increase the bioactivity of such experimental restorative materials and promotes mineral deposition. Therefore, innovative resin-based materials containing functional halloysite-nanotube fillers may represent a valuable alternative for therapeutic minimally invasive treatments. (C) 2016 The Academy of Dental Materials. Published by Elsevier Ltd. All rights reserved.
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页码:1133 / 1143
页数:11
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