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Searching for Alternative Plasmonic Materials for Specific Applications

机译:寻找特定应用的替代等离子材料

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The localized surface plasmon resonance (LSPR) based optical properties such as light scattering, absorption, and extinction efficiencies of multimetallic and metal-semiconductor nanostructures will be studied. The effect of size, surrounding medium, interaction between the particles, composition of the particles, and substrate on LSPR peak position, its line width, and maxima of cross-sections will also be discussed to optimize the selected systems for various applications like plasmonic sensors and biomedical applications and to enhance the efficiency of solar cells. Therefore, by varying all these factors, the LSPR peak of multimetallic and metal-semiconductor nanostructures can be tuned over the entire UV-visible to infrared (IR) region of the electromagnetic spectrum. Moreover the optical properties of underlying semiconductor materials can be enhanced by combining the semiconductor with noble metal nanoparticles.
机译:将研究基于局部表面等离子体共振(LSPR)的光学特性,例如多金属和金属半导体纳米结构的光散射,吸收和消光效率。还将讨论尺寸,周围介质,颗粒之间的相互作用,颗粒组成和底物对LSPR峰位置,其线宽和横截面最大值的影响,以针对各种应用(如等离子传感器)优化所选系统和生物医学应用,并提高太阳能电池的效率。因此,通过改变所有这些因素,可以在电磁光谱的整个UV可见光到红外(IR)区域上调整多金属和金属半导体纳米结构的LSPR峰。此外,可以通过将半导体与贵金属纳米颗粒结合来增强下面的半导体材料的光学特性。

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