首页> 外文期刊>Journal of the American Chemical Society >Free-standing Nanocomposite Multilayers With Variouslength Scales, Adjustable Internal Structures, Andrnfunctionalities
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Free-standing Nanocomposite Multilayers With Variouslength Scales, Adjustable Internal Structures, Andrnfunctionalities

机译:具有各种长度尺度,可调节的内部结构和功能性的独立式纳米复合多层

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We introduce an innovative and robust method for the preparation of nanocomposite multilayers, which allows accurate control over the placement of functional groups as well as the composition and dimensions of individual layers/internal structure. By employing the photocross-linkable polystyrene (PS-N_3, M_n = 28.0 kg/mol) with 10 wt % azide groups (-N_3) for host polymer and/or the PS-N_3-SH (M_n = 6.5 kg/mol) with azide and thiol (-SH) groups for capping ligands of inorganic nanoparticles, nanocomposite multilayers were prepared by an efficient photocross-linking layer-by-layer process, without perturbing underlying layers and nanostructures. The thickness of individual layers could be controlled from a few to hundreds of nanometers producing highly ordered internal structure, and the resulting nanocomposite multilayers, consisting of polymer and inorganic nanoparticles (CdSe@ZnS, Au, and Pt), exhibit a variety of interesting physical properties. These include prolonged photoluminescent durability, facile color tuning, and the ability to prepare functional free-standing films that can have the one-dimensional photonic band gap and furthermore be patterned by photolithography. This robust and tailored method opens a new route for the design of functional film devices based on nanocomposite multilayers.
机译:我们介绍了一种创新而强大的纳米复合多层板的制备方法,该方法可以精确控制官能团的位置以及各个层/内部结构的组成和尺寸。通过将具有10 wt%叠氮化物基团(-N_3)的可光交联聚苯乙烯(PS-N_3,M_n = 28.0 kg / mol)用于主体聚合物和/或将PS-N_3-SH(M_n = 6.5 kg / mol)用于主体聚合物叠氮化物和巯基(-SH)用于封盖无机纳米颗粒的配体,通过一种有效的逐层光致交联工艺制备了纳米复合多层膜,而不会干扰底层和纳米结构。各个层的厚度可以控制在几纳米到几百纳米之间,以产生高度有序的内部结构,并且所得的由聚合物和无机纳米粒子(CdSe @ ZnS,Au和Pt)组成的纳米复合多层膜表现出各种有趣的物理性质属性。这些包括延长的光致发光耐久性,容易的颜色调节以及制备功能性自支撑膜的能力,该膜可以具有一维光子带隙并且还可以通过光刻法进行图案化。这种强大且量身定制的方法为基于纳米复合材料多层的功能性薄膜器件的设计开辟了一条新途径。

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