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Dielectric function of two-phase colloid-polymer nanocomposite

机译:两相胶体-聚合物纳米复合材料的介电功能

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The plasmon resonance of metal nanoparticles determines their optical response in the visible spectral range. Many details such as the electronic properties of gold near the particle surface and the local environment of the particles influence the spectra. We show how the cheap but highly precise fabrication of composite nanolayers by spin-assisted layer-by-layer deposition of polyelectrolytes can be used to investigate the spectral response of gold nanospheres (GNS) and gold nanorods (GNR) in a self-consistent way, using the established Maxwell-Garnett effective medium (MGEM) theory beyond the limit of homogeneous media. We show that the dielectric function of gold nanoparticles differs from the bulk value and experimentally characterize the shape and the surrounding of the particles thoroughly by SEM, AFM and ellipsometry. Averaging the dielectric functions of the layered surrounding by an appropriate weighting with the electric field intensity yields excellent agreement for the spectra of several nanoparticles and nanorods with various cover-layer thicknesses.
机译:金属纳米粒子的等离子体共振决定了它们在可见光谱范围内的光学响应。许多细节,例如粒子表面附近的金的电子特性和粒子的局部环境,都会影响光谱。我们展示了如何通过自旋辅助逐层沉积聚电解质廉价,高精度地制造复合纳米层,从而以自洽的方式研究金纳米球(GNS)和金纳米棒(GNR)的光谱响应,使用已建立的Maxwell-Garnett有效介质(MGEM)理论超越了均匀介质的限制。我们表明,金纳米粒子的介电功能不同于体积值,并通过SEM,AFM和椭偏仪实验性地表征了粒子的形状和周围环境。通过适当的加权与电场强度对分层周围环境的介电功能进行平均,可以得到具有不同覆盖层厚度的几种纳米粒子和纳米棒的光谱的极佳一致性。

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