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Pulse propagation and optically controllable switch in coupled semiconductor-double-quantum-dot nanostructures

机译:耦合半导体双量子点纳米结构中的脉冲传播和光控开关

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摘要

The problem of pulse propagation is theoretically investigated through a coupled semiconductor-double-quantum-dot (SDQD) nanostructure. Solving the coupled Maxwell-Bloch equations for the SDQD and field simultaneously, the dynamic control of pulse propagation through the medium is numerically explored. It is found that when all the control fields are in exact resonance with their corresponding transitions, a weak Gaussian-shaped probe pulse is transmitted through the medium nearly without any significant absorption and losses so that it can preserve its shape for quite a long propagation distance. In contrast, when one of the control fields is not in resonance with its corresponding transition, the probe pulse will be absorbed by the QD medium after a short distance. Then we consider the probe pulses with higher intensities. It is realized that an intense probe pulse experiences remarkable absorption and broadening during propagation. Finally, we demonstrate that this SDQD system can be employed as an optically controllable switch for the wave propagation to transit from an absorbing phase to a perfect transparency for the probe field. The required time for such switch is also estimated through realistic values.
机译:理论上通过耦合半导体双量子点(SDQD)纳米结构研究了脉冲传播问题。同时求解SDQD和场的耦合Maxwell-Bloch方程,数值研究了脉冲在介质中传播的动态控制。已发现,当所有控制场都与其相应的跃迁精确共振时,几乎没有任何明显的吸收和损耗,弱的高斯形探测脉冲便会通过介质传输,从而可以在较长的传播距离内​​保持其形状。相反,当控制场之一与其相应的跃迁不谐振时,探测脉冲将在短距离后被QD介质吸收。然后我们考虑具有更高强度的探测脉冲。已经认识到,强的探测脉冲在传播期间会经历显着的吸收和展宽。最后,我们证明了该SDQD系统可以用作光传播开关的光控开关,以从吸收相过渡到探测场的完美透明。这种切换所需的时间也可以通过实际值来估算。

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  • 来源
    《Journal of Applied Physics 》 |2016年第18期| 183104.1-183104.8| 共8页
  • 作者

    H. R. Hamedi;

  • 作者单位

    Institute of Theoretical Physics and Astronomy, Vilnius University Sauletekio 3 LT-10222 Vilnius, Lithuania;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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