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<ArticleSet>
  <Article>
    <Journal>
      <PublisherName>Tabriz University of Medical Sciences</PublisherName>
      <JournalTitle>Journal of Dental Research, Dental Clinics, Dental Prospects</JournalTitle>
      <Issn>2008-210X</Issn>
      <Volume>8</Volume>
      <Issue>4</Issue>
      <PubDate PubStatus="ppublish">
        <Year>2014</Year>
        <Month>12</Month>
        <DAY>03</DAY>
      </PubDate>
    </Journal>
    <ArticleTitle>Effect of TiO2 Nanoparticles on Tensile Strength of Dental Acrylic Resins</ArticleTitle>
    <FirstPage>197</FirstPage>
    <LastPage>203</LastPage>
    <ELocationID EIdType="doi">10.5681/joddd.2014.036</ELocationID>
    <Language>EN</Language>
    <AuthorList>
      <Author>
        <FirstName>Saeed</FirstName>
        <LastName>Shirkavad</LastName>
      </Author>
      <Author>
        <FirstName>Elnaz</FirstName>
        <LastName>Moslehifard</LastName>
      </Author>
    </AuthorList>
    <PublicationType>Journal Article</PublicationType>
    <ArticleIdList>
      <ArticleId IdType="doi">10.5681/joddd.2014.036</ArticleId>
    </ArticleIdList>
    <History>
      <PubDate PubStatus="received">
        <Year>2014</Year>
        <Month>12</Month>
        <Day>18</Day>
      </PubDate>
    </History>
    <Abstract>Background and aims. Adding further fillers to dental resins may enhance their physical characteristics. The aim of this study was to evaluate the tensile strength of heat-curing acrylic resin reinforced by TiO2nanoparticles added into the resin matrix. Materials and methods. Commercially available TiO2 nanoparticles were obtained and characterized using X-ray diffrac-tion (XRD) and scanning electron microscopy (SEM) to determine their crystalline structure, particle size and morphology. TiO2-acrylic resin nanocomposite was prepared by mixing 0.5, 1 and 2 (wt%) of surface modified TiO2 nanoparticles in an amalgamator providing three groups of samples. Before curing, the obtained paste was packed into steel molds. After cur-ing, the specimens were removed from the molds. The tensile strength test samples were prepared according to ISO 1567. Results. Two crystalline phases were found in TiO2 nanoparticles including: (i) anatase as the major one, and (ii) rutile. The average particle size calculated according to the Scherrer equation was 20.4 nm, showing a normal size distribution. Ac-cording to SEM images, the nanocomposite with 1wt% TiO2 nanoparticles had a better distribution compared to other groups. In addition, the group by 1wt% TiO2 exhibited higher tensile strength with a significant difference compared to other groups. ANOVA showed significant differences between the contents of TiO2 particles in acrylic resin (F = 22.19; P &lt; 0.001). Conclusion. A considerable increase in tensile strength was observed with titania NPs reinforcement agents in 1wt% by weight. Further increase of TiO2 nanoparticles decreased the tensile strength.</Abstract>
    <ObjectList>
      <Object Type="keyword">
        <Param Name="value">Acrylic resins</Param>
      </Object>
      <Object Type="keyword">
        <Param Name="value">materials testing</Param>
      </Object>
      <Object Type="keyword">
        <Param Name="value">metal nanoparticles</Param>
      </Object>
      <Object Type="keyword">
        <Param Name="value">tensile strength</Param>
      </Object>
    </ObjectList>
  </Article>
</ArticleSet>