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Computational studies of semiconductor quantum dots

机译:半导体量子点的计算研究

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摘要

Light-absorption and luminescence processes in nano-sized materials can be modelled either by using computational approaches developed for quantum chemical calculations or by applying computational methods in the effective mass approximation(EMA)originally intended for solid-state theory studies.An overview of the theory and implementation of an ab initio correlation EMA method for studies of luminescence properties of embedded semiconductor quantum dots is presented.The applicability of the method and the importance of correlation effects are demonstrated by calculations on InGaAs/GaAs quantum-dot and quantum-ring samples.Ab initio and density functional theory(DFT)quantum chemical studies of optical transitions in freestanding silicon nanoclusters are also discussed.The accuracy of the optical gaps and oscillator strengths for silicon nanoclusters obtained using different computational methods is addressed.Changes in the cluster structures,excitation energies and band strengths upon excitation are reported.The role of the surface termination and functional groups on the silicon nanocluster surfaces is discussed.
机译:可以使用开发用于量子化学计算的计算方法或通过将计算方法应用于最初用于固态理论研究的有效质量近似(EMA)中来对纳米级材料中的光吸收和发光过程进行建模。介绍了一种从头算相关EMA方法研究嵌入式半导体量子点的发光特性的理论和实现方法,并通过对InGaAs / GaAs量子点和量子环样品的计算证明了该方法的适用性和相关效应的重要性还讨论了从头算和密度泛函理论(DFT)量子化学研究独立硅纳米团簇中的光学跃迁的问题。解决了使用不同计算方法获得的硅纳米团簇的光学间隙和振荡器强度的准确性。簇结构的变化,激发能和谱带强度报道了激发。讨论了表面终止和官能团在硅纳米簇表面上的作用。

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