Department of Orthodontics, Faculty of Dentistry, Tehran University of Medical Sciences, Tehran, Iran.
J Prosthodont Res. 2013 Jan;57(1):15-9. doi: 10.1016/j.jpor.2012.05.001. Epub 2012 Nov 28.
TiO(2) and SiO(2) nanoparticles are products of nanotechnology which have been incorporated to acrylic resins (AR) in order to induce antimicrobial properties. However, as additives they can affect the mechanical properties of the final product. The aim of this study was to survey the effects of TiO(2) and SiO(2) nanoparticles on flexural strength (Fs) of poly (methyl methacrylate) acrylic resins.
Acrylic specimens (Selecta Plus) in size of 5×10 (±0.2)×3.3 (±0.2)mm were prepared and divided into 7 groups: AR containing nanoTiO(2), SiO(2) and TiO(2) with SiO(2) in two concentration of 1% and 0.5%, in addition to a control group. To prepare nano AR, nanoparticles were added to the monomer. All specimens were stored in 37°C distilled water and underwent Fs test by universal testing machine (Zwick).
The maximum mean flexural strength (43.5 MPa) belongs to the control group and AR containing 0.5% of both TiO(2) and SiO(2) demonstrated the minimum mean Fs (30.1 MPa). Resins contained TiO(2), demonstrated lower values of Fs than those contained SiO(2) with the same concentration, but the differences were not significant (P>0.05).
Incorporation of TiO(2) and SiO(2) nanoparticles into acrylic resins can adversely affect the flexural strength of the final products, and this effect is directly correlated with the concentration of nanoparticles.
TiO(2) 和 SiO(2) 纳米颗粒是纳米技术的产物,已被添加到丙烯酸树脂 (AR) 中以诱导抗菌性能。然而,作为添加剂,它们可能会影响最终产品的机械性能。本研究的目的是调查 TiO(2) 和 SiO(2) 纳米颗粒对聚甲基丙烯酸甲酯 (PMMA) 丙烯酸树脂弯曲强度 (Fs) 的影响。
制备尺寸为 5×10(±0.2)×3.3(±0.2)mm 的丙烯酸树脂试件,并分为 7 组:AR 中含有纳米 TiO(2)、SiO(2)和 TiO(2)与 SiO(2)的浓度为 1%和 0.5%,此外还有一个对照组。为了制备纳米 AR,将纳米颗粒添加到单体中。所有试件均在 37°C 蒸馏水中储存,并通过万能试验机 (Zwick) 进行 Fs 测试。
最大平均弯曲强度 (43.5 MPa) 属于对照组,AR 中含有 0.5%的 TiO(2)和 SiO(2) 的平均 Fs 最小 (30.1 MPa)。含有 TiO(2)的树脂的 Fs 值低于相同浓度下含有 SiO(2)的树脂,但差异无统计学意义 (P>0.05)。
将 TiO(2) 和 SiO(2) 纳米颗粒掺入丙烯酸树脂中会对最终产品的弯曲强度产生不利影响,这种影响与纳米颗粒的浓度直接相关。