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Spectroscopic studies of individual plasmon resonant nanoparticles

机译:单个等离激元共振纳米粒子的光谱研究

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We present a detailed description of the apparatus and techniques that we have utilized in our experimental study of individual plasmon resonant nanoparticles, along with a brief description of some major results. The apparatus consists of a spectroscopic system combined with a modified darkfield microscope, which enables the user to sequentially select individual resonant nanostructures in the microscopic field of view for spectroscopic study. Plasmon resonant nanostructures scatter light elastically, and typically have very large scattering cross-sections at their resonant optical wavelengths. In general, spectra can be obtained with acquisition times between . 1 to 30 seconds, and color images can be captured using consumer digital color cameras. Spheres, tetrahedrons, and pentagonal platelets were fabricated using colloidal chemistry techniques. To produce highly anisotropic structures such as nanorods and "barbells", templates were used. Many of these nanostructures have been individually spectroscopically characterized, and their spectra correlated with their shape and size as determined by transmission electron microscope (TEM). The unique shape, size, composition, and dielectric surroundings of the individual plasmon resonant nanostructures determine their plasmon resonant behavior. We will show how the composition of the substrate on which the particles are immobilized and the dielectric of the surrounding medium have a significant effect on the plasmon resonance of the individual particles.
机译:我们提供了在单个等离振子共振纳米粒子的实验研究中使用的设备和技术的详细说明,以及一些主要结果的简短说明。该设备由与改进的暗场显微镜相结合的光谱系统组成,该系统使用户能够顺序选择微观视野中的各个共振纳米结构进行光谱研究。等离子体共振纳米结构弹性地散射光,并且通常在其共振光学波长处具有非常大的散射截面。通常,可以在到之间的采集时间获得光谱。 1至30秒,并且可以使用消费类数码彩色相机捕获彩色图像。球形,四面体和五边形血小板是使用胶体化学技术制备的。为了产生高度各向异性的结构,例如纳米棒和“杠铃”,使用了模板。这些纳米结构中的许多已经分别进行了光谱表征,并且其光谱与通过透射电子显微镜(TEM)确定的形状和尺寸相关。各个等离子体共振纳米结构的独特形状,大小,组成和介电环境决定了它们的等离子体共振行为。我们将显示固定有颗粒的基质的组成以及周围介质的电介质如何对单个颗粒的等离子体共振产生重大影响。

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