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Crystal Phase Effects in Si Nanowire Polytypes and Their Homojunctions

机译:Si纳米线多型体及其同质结的晶相效应

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Recent experimental investigations have confirmed the possibility to synthesize and exploit polytypism in group IV nanowires. Driven by this promising evidence, we use first-principles methods based on density functional theory and many-body perturbation theory to investigate the electronic and optical properties of hexagonal diamond and cubic-diamond Si NWs as well as their homojunctions. We show that hexagonal diamond. NWs are characterized by a more pronounced quantum confinement effect than cubic diamond NWs. Furthermore, they absorb more light in the visible region-with respect to cubic diamond ones and, for most of the studied diameters, they are direct band gap materials. The study of the homojunctions reveals that the diameter has a crucial effect on the band alignment at the interface. In particular, at small diameters the band offset is type-I whereas at experimentally relevant sizes the offset turns up to be of type-II. These findings highlight intriguing possibilities to modulate electron and hole separations as well as electronic and optical properties by simply modifying the crystal phase and the size of the junction.
机译:最近的实验研究证实了在IV组纳米线中合成和利用多型性的可能性。在这一有前途的证据的推动下,我们使用基于密度泛函理论和多体扰动理论的第一性原理方法来研究六角形金刚石和立方金刚石硅纳米线及其同质结的电子和光学性质。我们展示了六角形的钻石。 NW比立方金刚石NW具有更明显的量子约束效应。此外,相对于立方金刚石,它们在可见光区域吸收更多的光,并且对于大多数研究的直径,它们都是直接带隙材料。对同质结的研究表明,直径对界面处的能带排列具有至关重要的影响。特别地,在小直径处,带偏移为I型,而在实验上相关的尺寸下,偏移变为II型。这些发现突出表明了通过简单地改变晶体相和结的大小来调节电子和空穴的分离以及电子和光学性质的有趣方法。

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