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Exciton confinement in strain-engineered metamorphic InAs/InxGa1-xAs quantum dots

机译:菌株工程变质INAS / INXGA1-XAS量子点的激子禁闭

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摘要

We report a comprehensive study of exciton confinement in self-assembled InAs quantum dots (QDs) in strain-engineered metamorphic InxGa1-x As confining layers on GaAs using low-temperature magnetophotoluminescence. As the lattice mismatch (strain) between QDs and confining layers (CLs) increases from 4.8% to 5.7% the reduced mass of the exciton increases, but saturates at highermismatches. At lowQD-CL mismatch there is clear evidence of spillover of the exciton wave function due to small localization energies. This is suppressed as the In content x in the CLs decreases (mismatch and localization energy increasing). The combined effects of low effective mass and wave-function spillover at high x result in a diamagnetic shift coefficient that is an order of magnitude larger than for samples where In content in the barrier is low (mismatch is high and localization energy is large). Finally, an anomalously small measured Bohr radius in samples with the highest x is attributed to a combination of thermalization due to low localization energy, and its enhancement with magnetic field, a mechanism which results in small dots in the ensemble dominating the measured Bohr radius.
机译:我们报告了在应变工程变质Inxga1-X中的自组装成量子点(QDS)中的激子监禁的综合研究,用低温磁光致发光在GaAs上的限制层。随着QDS和限制层(CLS)之间的晶格错配(应变)从4.8%增加到激子增加的减少量增加到5.7%,但在高级匹配时饱和。在Lowqd-Cl失配下,由于小的定位能量,有明显的证据表明激子波函数溢出。随着CLS中的中的内容X减小(不匹配和定位能量增加),这被抑制了这一点。在高X下低有效质量和波浪功能溢出的组合效果导致抗磁移系数,其大于屏障中内容的样品的数量级(不匹配高,局部化能量大)。最后,具有最高X的样品中的异常小测量的BoHR半径归因于由于低定位能量导致的热化组合,以及其与磁场的增强,这导致集体中的小点主导测量的BoHR半径。

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  • 来源
    《Physical review, B》 |2017年第19期|共8页
  • 作者单位

    Univ Lancaster Dept Phys Lancaster LA1 4YB England;

    Univ Lancaster Dept Phys Lancaster LA1 4YB England;

    Katholieke Univ Leuven Inst Nanoscale Phys &

    Chem INPAC Celestijnenlaan 200D B-3001 Leuven Belgium;

    Katholieke Univ Leuven Inst Nanoscale Phys &

    Chem INPAC Celestijnenlaan 200D B-3001 Leuven Belgium;

    Katholieke Univ Leuven Inst Nanoscale Phys &

    Chem INPAC Celestijnenlaan 200D B-3001 Leuven Belgium;

    CNR IMEM Parco Area Sci 37-A I-43124 Parma Italy;

    CNR IMEM Parco Area Sci 37-A I-43124 Parma Italy;

    CNR IMEM Parco Area Sci 37-A I-43124 Parma Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
  • 关键词

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