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短周期CdO/MgO超晶格的带隙研究

The Band-Gap Studies of Short-Period CdO/MgO Superlattices.

作者信息

Przeździecka Ewa, Strąk P, Wierzbicka A, Adhikari A, Lysak A, Sybilski P, Sajkowski J M, Seweryn A, Kozanecki A

机构信息

Institute of Physics, Polish Academy of Sciences, Al. Lotników 32/46, 02-668, Warsaw, Poland.

Institute of High Pressure Physics, Polish Academy of Sciences, Sokołowska 29/37, 01-142, Warsaw, Poland.

出版信息

Nanoscale Res Lett. 2021 Apr 9;16(1):59. doi: 10.1186/s11671-021-03517-y.

Abstract

Trends in the behavior of band gaps in short-period superlattices (SLs) composed of CdO and MgO layers were analyzed experimentally and theoretically for several thicknesses of CdO sublayers. The optical properties of the SLs were investigated by means of transmittance measurements at room temperature in the wavelength range 200-700 nm. The direct band gap of {CdO/MgO} SLs were tuned from 2.6 to 6 eV by varying the thickness of CdO from 1 to 12 monolayers while maintaining the same MgO layer thickness of 4 monolayers. Obtained values of direct and indirect band gaps are higher than those theoretically calculated by an ab initio method, but follow the same trend. X-ray measurements confirmed the presence of a rock salt structure in the SLs. Two oriented structures (111 and 100) grown on c- and r-oriented sapphire substrates were obtained. The measured lattice parameters increase with CdO layer thickness, and the experimental data are in agreement with the calculated results. This new kind of SL structure may be suitable for use in visible, UV and deep UV optoelectronics, especially because the energy gap can be precisely controlled over a wide range by modulating the sublayer thickness in the superlattices.

摘要

针对由CdO和MgO层组成的短周期超晶格(SLs),在几种CdO子层厚度下,通过实验和理论分析了其带隙行为的趋势。通过在室温下对200 - 700 nm波长范围内进行透射率测量,研究了超晶格的光学性质。在保持MgO层厚度为4个单层不变的情况下,通过将CdO的厚度从1个单层变化到12个单层,将{CdO/MgO}超晶格的直接带隙从2.6 eV调节到6 eV。获得的直接和间接带隙值高于通过从头算方法进行理论计算的值,但遵循相同的趋势。X射线测量证实了超晶格中存在岩盐结构。获得了在c取向和r取向蓝宝石衬底上生长的两种取向结构(111和100)。测量的晶格参数随CdO层厚度增加,实验数据与计算结果一致。这种新型的超晶格结构可能适用于可见光、紫外光和深紫外光光电子学,特别是因为通过调制超晶格中的子层厚度,可以在很宽的范围内精确控制能隙。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c438/8035356/9fb8cc7c5898/11671_2021_3517_Fig1_HTML.jpg

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