论文标题

多体腔量子电动力学,驱动的不均匀发射器

Many-body cavity quantum electrodynamics with driven inhomogeneous emitters

论文作者

Lei, Mi, Fukumori, Rikuto, Rochman, Jake, Zhu, Bihui, Endres, Manuel, Choi, Joonhee, Faraon, Andrei

论文摘要

与光学谐振器耦合的量子发射器是用于探索腔量子电动力学(CQED)基本现象的典型系统,并且通常在用作Qubits,Memories和dendducer的量子设备中使用。许多以前的实验性CQED研究都集中在少数相同的发射器与弱外部驱动器相互作用的制度上,因此可以使用简单,有效的模型来描述该系统。然而,尽管在量子应用中具有重要性和潜力,但尚未完全探索一个无序,多体量子系统的动力学。在这里,我们研究了固态发射器的大型,不均匀地扩大的集合,以及高度合作与纳米光子谐振器在强烈的激发下的行为。我们在腔体反射光谱中发现了尖锐的,统称的透明度(CIT),这是由量子干扰和由驱动的非均匀发射器和空腔光子之间的相互作用引起的集体响应引起的。此外,CIT窗口内的连贯激发会导致高度非线性的光学发射,从快速超级到缓慢的亚降低。多体CQED制度中的这些现象实现了实现慢灯和频率参考的新机制,铺平了一种朝着固态超级激光器铺平的方法,并为基于集合的量子互连提供了开发。

Quantum emitters coupled to optical resonators are quintessential systems for exploring fundamental phenomena in cavity quantum electrodynamics (cQED) and are commonly used in quantum devices acting as qubits, memories and transducers. Many previous experimental cQED studies have focused on regimes in which a small number of identical emitters interact with a weak external drive, such that the system can be described with simple, effective models. However, the dynamics of a disordered, many-body quantum system subject to a strong drive have not been fully explored, despite its importance and potential in quantum applications. Here we study how a large, inhomogeneously broadened ensemble of solid-state emitters coupled with high cooperativity to a nanophotonic resonator behaves under strong excitation. We discover a sharp, collectively induced transparency (CIT) in the cavity reflection spectrum, resulting from quantum interference and collective response induced by the interplay between driven inhomogeneous emitters and cavity photons. Furthermore, coherent excitation within the CIT window leads to highly nonlinear optical emission, spanning from fast superradiance to slow subradiance. These phenomena in the many-body cQED regime enable new mechanisms for achieving slow light and frequency referencing, pave a way towards solid-state superradiant lasers and inform the development of ensemble-based quantum interconnects.

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