Department of Physics Engineering, Mie University, 1577 Kurima-Machiya, Tsu 514-8507, Japan.
Nano Lett. 2010 Nov 10;10(11):4614-8. doi: 10.1021/nl1027099.
The band alignments of twin-plane superlattices in semiconductor nanowires are systematically investigated on the basis of density functional calculations. Our calculations demonstrate that for nanowires with small diameters the quantum-confinement effect is prominent within wurtzite structure regions and the energy gap in wurtzite-structured nanowires is remarkably larger than that including zinc-blende structure. This results in the straddling band alignment, in which both electrons and holes are confined in zinc-blende structure region. The analysis using a simple tight-binding methods also clarifies that the straddling band alignments can be realized when the diameters of nanowires are less than 4-8 nm, leading to full control of band alignments by varying the nanowire diameter. Our results provide the ability of band-alignment tuning and open new possibilities for band engineering.
基于密度泛函理论的计算,我们系统地研究了半导体纳米线中孪晶超晶格的能带排列。我们的计算表明,对于直径较小的纳米线,在纤锌矿结构区域内量子限制效应显著,并且纤锌矿结构纳米线的能隙明显大于包括闪锌矿结构的能隙。这导致了跨越能带排列,其中电子和空穴都被限制在闪锌矿结构区域内。使用简单的紧束缚方法的分析也阐明,当纳米线的直径小于 4-8nm 时,可以实现跨越能带排列,从而通过改变纳米线的直径来完全控制能带排列。我们的结果提供了能带排列调整的能力,并为能带工程开辟了新的可能性。