双色相位调制激光脉冲相干控制石墨烯单层中浅杂质量子态:弛豫过程的影响

IF 0.4 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY
A. A. Avetisyan, A. P. Djotyan, G. P. Djotyan, A. L. Vartanian, A. L. Asatryan
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引用次数: 0

摘要

用变分法计算了具有开能隙的单层石墨烯中浅层给体杂质的1S - \(2{{P}^{ + }}\)和2S - \(2{{P}^{ + }}\)光跃迁的偶极子矩阵元。下一步,考虑到系统中的弛豫过程,分析了双色相位调制(频率啁啾)激光脉冲在1S和2S两个亚稳态之间的居群转移。如果双色脉冲的持续时间远短于系统的弛豫时间,则可以在没有大量激发态人口的情况下以稳健的方式进行这种人口转移\(2{{P}^{ + }}\)。激发态的自发衰变和去相弛豫过程导致在亚稳态之间的居群转移不完全。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Coherent Control of a Shallow Impurity Quantum States in Graphene Monolayer by Bichromatic Phase Modulated Laser Pulses: Influence of Relaxation Processes

Coherent Control of a Shallow Impurity Quantum States in Graphene Monolayer by Bichromatic Phase Modulated Laser Pulses: Influence of Relaxation Processes

The dipole matrix elements for optical transitions 1S\(2{{P}^{ + }}\) and 2S\(2{{P}^{ + }}\) of a shallow donor impurity in a graphene monolayer with an opened energy gap are calculated in a perpendicular magnetic field using a variational approach. In the next step, population transfer between the two metastable states 1S and 2S by a bichromatic phase modulated (frequency chirped) laser pulse is analyzed taking into account relaxation processes in the system. It is demonstrated that such population transfer may be performed in a robust way without a considerable population of the excited state \(2{{P}^{ + }}\) if the duration of the bichromatic pulse is much shorter than the relaxation times of the system. Spontaneous decay of the excited state and dephasing relaxation processes result in not complete transfer of the population between the metastable states.

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来源期刊
CiteScore
1.00
自引率
66.70%
发文量
43
审稿时长
6-12 weeks
期刊介绍: Journal of Contemporary Physics (Armenian Academy of Sciences) is a journal that covers all fields of modern physics. It publishes significant contributions in such areas of theoretical and applied science as interaction of elementary particles at superhigh energies, elementary particle physics, charged particle interactions with matter, physics of semiconductors and semiconductor devices, physics of condensed matter, radiophysics and radioelectronics, optics and quantum electronics, quantum size effects, nanophysics, sensorics, and superconductivity.
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