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Plasmon-enhanced silicon nanocrystal luminescence for optoelectronic applications.

机译:用于光电应用的等离激元增强的硅纳米晶体发光。

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On the path toward the realization of silicon-based optical emitters for integrated microelectronics, this thesis studies the optoelectronic properties of silicon nanocrystals as a function of their surface passivation and their interactions with plasmonic materials. The first part of the thesis utilizes controlled oxidation exposures and photoluminescence spectroscopy to verify previous theoretical and computational predictions of oxygen-related surface states that effectively narrow the energy band gap of small silicon nanocrystals. The focus of the second half of the thesis is on experimental and computational studies of enhanced luminescence from silicon nanocrystals in the near field of noble metal nanostructures.; Surface plasmon enhancement is a technique that has only recently been applied to semiconductor nanocrystal luminescence. This thesis thoroughly investigates the emission of silicon nanocrystals coupled to gold and silver nanostructures to achieve a new level of understanding of the enhancement effect. By pairing silicon nanocrystals to metal nanostructures, up to ten-fold increases in the luminescence intensity are realized, concomitant with enhancements of the radiative decay rate, the absorbance cross section; and the quantum efficiency. Moreover, coupling at the plasmon resonance frequency is used to tune the nanocrystal emission spectrum. A computational exploration of these experimental observations indicates that the enhancement effects can be ascribed to emission in the concentrated local field that results from the excitation of metal particle plasmon modes. Finally, the process of coupling silicon nanocrystal emitters to plasmonic metals is applied to a silicon-nanocrystal light-emitting diode, and enhanced electroluminescence is realized.
机译:在实现集成微电子学的硅基光发射器的道路上,本论文研究了硅纳米晶体的光电特性,这些特性是其表面钝化以及与等离子体材料相互作用的函数。论文的第一部分利用可控的氧化暴露和光致发光光谱法来验证先前对与氧有关的表面状态的理论和计算预测,从而有效地缩小了小型硅纳米晶体的能带隙。论文后半部分的重点是在贵金属纳米结构的近场中增强硅纳米晶体发光的实验和计算研究。表面等离子体激元增强是最近才应用于半导体纳米晶体发光的技术。本文彻底研究了与金和银纳米结构耦合的硅纳米晶体的发射,以使对增强效果的认识达到新的水平。通过将硅纳米晶体与金属纳米结构配对,可实现高达十倍的发光强度增加,同时辐射衰减率,吸收截面增大。和量子效率。此外,在等离子体共振频率上的耦合用于调谐纳米晶体发射光谱。对这些实验观察结果的计算探索表明,增强效应可以归因于在集中的局部场中的发射,该发射是由金属粒子等离激元模式的激发引起的。最后,将硅纳米晶体发射极耦合到等离子体金属的过程应用于硅纳米晶体发光二极管,实现了增强的电致发光。

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