Dirnberger Florian, Bushati Rezlind, Datta Biswajit, Kumar Ajesh, MacDonald Allan H, Baldini Edoardo, Menon Vinod M
Department of Physics, City College of New York, New York, NY, USA.
Department of Physics, The Graduate Center, City University of New York, New York, NY, USA.
Nat Nanotechnol. 2022 Oct;17(10):1060-1064. doi: 10.1038/s41565-022-01204-2. Epub 2022 Sep 12.
Strong coupling between light and elementary excitations is emerging as a powerful tool to engineer the properties of solid-state systems. Spin-correlated excitations that couple strongly to optical cavities promise control over collective quantum phenomena such as magnetic phase transitions, but their suitable electronic resonances are yet to be found. Here, we report strong light-matter coupling in NiPS, a van der Waals antiferromagnet with highly correlated electronic degrees of freedom. A previously unobserved class of polaritonic quasiparticles emerges from the strong coupling between its spin-correlated excitons and the photons inside a microcavity. Detailed spectroscopic analysis in conjunction with a microscopic theory provides unique insights into the origin and interactions of these exotic magnetically coupled excitations. Our work introduces van der Waals magnets to the field of strong light-matter physics and provides a path towards the design and control of correlated electron systems via cavity quantum electrodynamics.
光与元激发之间的强耦合正成为一种用于设计固态系统特性的强大工具。与光学腔强烈耦合的自旋相关激发有望实现对诸如磁相变等集体量子现象的控制,但尚未找到合适的电子共振。在此,我们报道了在具有高度相关电子自由度的范德华反铁磁体NiPS中的强光-物质耦合。一类此前未被观察到的极化激元准粒子源于其自旋相关激子与微腔内光子之间的强耦合。结合微观理论的详细光谱分析为这些奇异的磁耦合激发的起源和相互作用提供了独特见解。我们的工作将范德华磁体引入强光-物质物理领域,并为通过腔量子电动力学设计和控制相关电子系统提供了一条途径。