《core-shell结构NaGdF4:Yb,Er@SiO2@Eu(TTA)3Phen纳米复合材料的合成和可调光响应。》

  • 来源专题:纳米科技
  • 编译者: 郭文姣
  • 发布时间:2018-04-11
  • 高单分散核壳结构NaGdF4:Yb,Er@SiO2@Eu(TTA)3Phen(2-Thenoyltrifluoroacetone, TTA), 1,10-Phenanthroline monohydrate (Phen)纳米球是通过两步过程合成的。通过微乳液制备,将直径为13纳米的纳米球包裹在SiO2壳内。连接在SiO2外表面的配体敏化的Eu配合物。绿色(542 nm)和红光(610nm)分别由NIR和紫外光照激发。因此,在核壳结构的复合纳米复合材料中可能存在可调光响应。在逆变过程中,在980nm激光下,542 nm处增加5倍,在660 nm处增加14倍。

    ——文章发布于2018年7月15日

相关报告
  • 《天然纳米复合材料的骨组织工程和再生医学综述》

    • 来源专题:纳米科技
    • 编译者:chenfang
    • 发布时间:2015-04-10
    • Natural-Based Nanocomposites for Bone Tissue Engineering and Regenerative Medicine: A Review Tissue engineering and regenerative medicine has been providing exciting technologies for the development of functional substitutes aimed to repair and regenerate damaged tissues and organs. Inspired by the hierarchical nature of bone, nanostructured biomaterials are gaining a singular attention for tissue engineering, owing their ability to promote cell adhesion and proliferation, and hence new bone growth, compared with conventional microsized materials. Of particular interest are nanocomposites involving biopolymeric matrices and bioactive nanosized fillers. Biodegradability, high mechanical strength, and osteointegration and formation of ligamentous tissue are properties required for such materials. Biopolymers are advantageous due to their similarities with extracellular matrices, specific degradation rates, and good biological performance. By its turn, calcium phosphates possess favorable osteoconductivity, resorbability, and biocompatibility. Herein, an overview on the available natural polymer/calcium phosphate nanocomposite materials, their design, and properties is presented. Scaffolds, hydrogels, and fibers as biomimetic strategies for tissue engineering, and processing methodologies are described. The specific biological properties of the nanocomposites, as well as their interaction with cells, including the use of bioactive molecules, are highlighted. Nanocomposites in vivo studies using animal models are also reviewed and discussed. 概要翻译: 组织工程和再生医学已发展为功能替代物修复和再生受损的组织和器官的热点技术。受骨组织结构的启发,纳米生物材料由于具有促进细胞粘合、细胞增殖、新骨生长,而被用作骨组织工程和修复。这些材料具备可生物降解、机械强度高、良好的骨愈合和韧带组织的形成能力。该文章综述了天然高分子/磷酸钙纳米复合材料、其设计原理和性能。
  • 《应用于电-水动力纳米技术的弹性体材料的纳米复合材料。》

    • 来源专题:纳米科技
    • 编译者:郭文姣
    • 发布时间:2018-03-05
    • 复制成型通常会引起弹性体的摩擦。迄今为止,这种现象只在非纹理弹性体表面进行了研究,尽管复制模塑是其纳米化的有效方法。在此,我们证明了通过复制成型的纳米材料表面的纳米材料也在纳米尺度上与纳米结构密切相关。利用开尔文探针显微镜、电液光刻和静电分析对我们的模型纳米结构、聚(二甲基硅氧烷)纳米阵列进行了从聚碳酸酯纳米锥阵列的复制,我们发现,诱导的三聚体在纳米范围内,特别是在其边缘处,是高度局部性的。通过有限元分析,我们还发现,在脱模过程中,轮辋的摩擦力最大。从这些研究结果中,我们可以识别出,作为控制tribocharge纳米尺度分布模式的主要因素,demol。通过将所产生的环形三角波电荷与电水动力光刻相结合,我们也实现了具有10个nm尺度环形山的纳米火山的简单实现。 ——文章发布于2018年3月02日