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Modification of conventional glass-ionomer cements with N-vinylpyrrolidone containing polyacids, nano-hydroxy and fluoroapatite to improve mechanical properties

机译:用含N-乙烯基吡咯烷酮的多元酸,纳米羟基和氟磷灰石改性常规玻璃离聚物水泥以改善机械性能

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Objective. The objective of this study was to enhance the mechanical strength of glass-ionomer cements, while preserving their unique clinical properties. Methods. Copolymers incorporating several different segments including N-vinylpyrrolidone (NVP) in different molar ratios were synthesized. The synthesized polymers were copolymers of acrylic acid and NVP with side chains containing itaconic acid. In addition, nano-hydroxyapatite and fluoroapatite were synthesized using an ethanol-based sol-gel technique. The synthesized polymers were used in glass-ionomer cement formulations (Fuji II commercial GIC) and the synthesized nanoceramic particles (nano-hydroxy or fluoroapatite) were also incorporated into commercial glass-ionomer powder, respectively. The synthesized materials were characterized using FT1R and Raman spectroscopy and scanning electron microscopy. Compressive, diametral tensile and biaxial flexural strengths of the modified glass-ionomer cements were evaluated. Results. After 24h setting, the NVP modified glass-ionomer cements exhibited higher compressive strength (163-167 MPa), higher diametral tensile strength (DTS) (13-17 MPa) and much higher biaxial flexural strength (23-26 MPa) in comparison to Fuji II GIC (160 MPa in CS, 12 MPa in DTS and 15 MPa in biaxial flexural strength). The nano-hydroxyapatite/fluoroapatite added cements also exhibited higher CS (177-179 MPa), higher DTS (19-20 MPa) and much higher biaxial flexural strength (28-30 MPa) as compared to the control group. The highest values for CS, DTS and BFS were found for NVP-nanoceramic powder modified cements (184 MPa for CS, 22 MPa for DTS and 33 MPa for BFS) which were statistically higher than control group. Conclusion. It was concluded that, both NVP modified and nano-HA/FA added glass-ionomer cements are promising restorative dental materials with improved mechanical properties.
机译:目的。这项研究的目的是增强玻璃离聚物水泥的机械​​强度,同时保留其独特的临床特性。方法。合成了包含几种不同链段的共聚物,包括不同摩尔比的N-乙烯基吡咯烷酮(NVP)。合成的聚合物是丙烯酸和NVP与含有衣康酸的侧链的共聚物。另外,使用基于乙醇的溶胶-凝胶技术合成了纳米羟基磷灰石和氟磷灰石。合成的聚合物用于玻璃离聚物水泥配方(Fuji II商业GIC)中,合成的纳米陶瓷颗粒(纳米羟基或氟磷灰石)也分别掺入商业玻璃离聚物粉末中。使用FT1R和拉曼光谱以及扫描电子显微镜对合成的材料进行表征。评估了改性玻璃离聚物水泥的压缩,径向拉伸和双轴弯曲强度。结果。凝固24小时后,与之相比,NVP改性的玻璃离聚物水泥显示出更高的抗压强度(163-167 MPa),更高的径向拉伸强度(DTS)(13-17 MPa)和更高的双轴弯曲强度(23-26 MPa)。富士II GIC(CS中为160 MPa,DTS中为12 MPa,双轴弯曲强度为15 MPa)。与对照组相比,添加纳米羟基磷灰石/氟磷灰石的水泥还表现出更高的CS(177-179 MPa),更高的DTS(19-20 MPa)和更高的双轴弯曲强度(28-30 MPa)。 NVP-纳米粉末改性水泥的CS,DTS和BFS最高值(CS 184 MPa,DTS 22 MPa和BFS 33 MPa)在统计学上高于对照组。结论。结论是,NVP改性和纳米HA / FA添加的玻璃离聚物胶粘剂都是具有改善的机械性能的有前途的修复性牙科材料。

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