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锗量子点发光的结构起源

Structural origin of light emission in germanium quantum dots.

作者信息

Little W, Karatutlu A, Bolmatov D, Trachenko K, Sapelkin A V, Cibin G, Taylor R, Mosselmans F, Dent A J, Mountjoy G

机构信息

Center for Condensed Matter and Materials Physics, School of Physics and Astronomy, Queen Mary, University of London, Mile End Road, London E1 4NS, UK.

1] Center for Condensed Matter and Materials Physics, School of Physics and Astronomy, Queen Mary, University of London, Mile End Road, London E1 4NS, UK [2] Electrical and Electronics Engineering, Yildirim Campus, Bursa Orhangazi University, 16245, Yildirim, Bursa, Turkey.

出版信息

Sci Rep. 2014 Dec 9;4:7372. doi: 10.1038/srep07372.

Abstract

We used a combination of optically-detected x-ray absorption spectroscopy with molecular dynamics simulations to explore the origins of light emission in small (5 nm to 9 nm) Ge nanoparticles. Two sets of nanoparticles were studied, with oxygen and hydrogen terminated surfaces. We show that optically-detected x-ray absorption spectroscopy shows sufficient sensitivity to reveal the different origins of light emission in these two sets of samples. We found that in oxygen terminated nanoparticles its the oxide-rich regions that are responsible for the light emission. In hydrogen terminated nanoparticles we established that structurally disordered Ge regions contribute to the luminescence. Using a combination of molecular dynamics simulations and optically-detected x-ray absorption spectroscopy we show that these disordered regions correspond to the disordered layer a few Å thick at the surface of the simulated nanoparticle.

摘要

我们结合光学检测X射线吸收光谱和分子动力学模拟,来探究小尺寸(5纳米至9纳米)锗纳米颗粒发光的起源。研究了两组纳米颗粒,其表面分别由氧和氢终止。我们表明,光学检测X射线吸收光谱具有足够的灵敏度,能揭示这两组样品中发光的不同起源。我们发现,在氧终止的纳米颗粒中,富含氧化物的区域是发光的原因。在氢终止的纳米颗粒中,我们确定结构无序的锗区域对发光有贡献。通过结合分子动力学模拟和光学检测X射线吸收光谱,我们表明这些无序区域对应于模拟纳米颗粒表面几埃厚的无序层。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4317/4260222/2a2cb02cbed6/srep07372-f1.jpg

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