Raman-phonon-polariton condensation in a transversely pumped cavity

IF 5.4 1区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY npj Quantum Materials Pub Date : 2024-10-17 DOI:10.1038/s41535-024-00693-9
Alexander N. Bourzutschky, Benjamin L. Lev, Jonathan Keeling
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Abstract

Phonon polaritons are hybrid states of light and matter that are typically realised when optically active phonons couple strongly to photons. We suggest a new approach to realising phonon polaritons, by employing a transverse-pumping Raman scheme, as used in experiments on cold atoms in optical cavities. This approach allows hybridisation between an optical cavity mode and any Raman-active phonon mode. Moreover, this approach enables one to tune the effective phonon–photon coupling by changing the strength of the transverse pumping light. We show that such a system may realise a phonon-polariton condensate. To do this, we find the stationary states and use Floquet theory to determine their stability. We thus identify distinct superradiant and lasing states in which the polariton modes are macroscopically populated. We map out the phase diagram of these states as a function of pump frequencies and strengths. Using parameters for transition metal dichalcogenides, we show that realisation of these phases may be practicably obtainable. The ability to manipulate phonon mode frequencies and attain steady-state populations of selected phonon modes provides a new tool for engineering correlated states of electrons.

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横向泵浦腔中的拉曼-声子-极化子凝聚
声子极化子是光与物质的混合状态,通常是在光学活性声子与光子强耦合时实现的。我们提出了一种实现声子极化子的新方法,即采用横向泵浦拉曼方案,就像在光腔中冷原子实验中使用的那样。这种方法可以实现光腔模式与任何拉曼声子模式之间的杂化。此外,这种方法还能通过改变横向泵浦光的强度来调整有效的声子-光子耦合。我们证明,这样的系统可以实现声子-极化子凝聚。为此,我们找到了静止态,并利用 Floquet 理论确定了它们的稳定性。因此,我们确定了不同的超辐射态和激光态,在这些态中,极化子模式是宏观填充的。我们绘制了这些态的相图,作为泵浦频率和强度的函数。通过使用过渡金属二掺杂化合物的参数,我们表明这些相位的实现是切实可行的。操纵声子模式频率和实现选定声子模式稳态种群的能力,为电子相关态的工程设计提供了一种新工具。
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来源期刊
npj Quantum Materials
npj Quantum Materials Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
10.60
自引率
3.50%
发文量
107
审稿时长
6 weeks
期刊介绍: npj Quantum Materials is an open access journal that publishes works that significantly advance the understanding of quantum materials, including their fundamental properties, fabrication and applications.
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