磁场对量子阱激子-极化子玻色-爱因斯坦凝聚的影响

IF 2.1 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER Solid State Communications Pub Date : 2024-09-11 DOI:10.1016/j.ssc.2024.115690
Nguyen Dung Chinh , Le Tri Dat , Vinh N.T. Pham , T.D. Anh-Tai , Vo Quoc Phong , Nguyen Duy Vy
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引用次数: 0

摘要

我们从理论上研究了磁场对砷化镓量子阱中激子-极化子走向玻色-爱因斯坦凝聚的弛豫过程的非线性效应。我们的研究发现,激子有效质量、拉比分裂和色散的改变会显著改变极化子在接近凝聚时的弛豫速率。通过使用准稳态泵,我们阐明了总极化子群和凝聚极化子群在不同磁场强度下的动态响应。值得注意的是,我们证明了在低能量泵浦条件下,磁场的存在会显著抑制凝聚。这种抑制可归因于能级间散射率的降低,而这正是高能色散陡度降低的结果。相反,增加泵浦能量和磁场可以提高弛豫效率,从而大幅增加凝聚极化子的数量。
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Effect of magnetic field on the Bose–Einstein condensation of quantum well exciton–polaritons

We theoretically investigate the nonlinear effects of a magnetic field on the relaxation process of exciton–polaritons toward Bose–Einstein condensation in GaAs quantum wells. Our study reveals that the modification of the exciton’s effective mass, Rabi splitting, and dispersion significantly alters the relaxation rate of polaritons as they approach condensation. By employing a quasi-stationary pump, we clarify the dynamics of the total and condensed polariton populations in response to varying magnetic field strengths. Notably, we demonstrate that under low-energy pumping conditions, the presence of a magnetic field significantly suppresses condensation. This suppression is attributed to the decreased scattering rate between energy levels, which is a consequence of the reduced steepness in the high-energy dispersion. Conversely, increasing both the pump energy and the magnetic field can enhance relaxation efficiency, leading to a substantially larger number of condensed polaritons.

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来源期刊
Solid State Communications
Solid State Communications 物理-物理:凝聚态物理
CiteScore
3.40
自引率
4.80%
发文量
287
审稿时长
51 days
期刊介绍: Solid State Communications is an international medium for the publication of short communications and original research articles on significant developments in condensed matter science, giving scientists immediate access to important, recently completed work. The journal publishes original experimental and theoretical research on the physical and chemical properties of solids and other condensed systems and also on their preparation. The submission of manuscripts reporting research on the basic physics of materials science and devices, as well as of state-of-the-art microstructures and nanostructures, is encouraged. A coherent quantitative treatment emphasizing new physics is expected rather than a simple accumulation of experimental data. Consistent with these aims, the short communications should be kept concise and short, usually not longer than six printed pages. The number of figures and tables should also be kept to a minimum. Solid State Communications now also welcomes original research articles without length restrictions. The Fast-Track section of Solid State Communications is the venue for very rapid publication of short communications on significant developments in condensed matter science. The goal is to offer the broad condensed matter community quick and immediate access to publish recently completed papers in research areas that are rapidly evolving and in which there are developments with great potential impact.
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