论文标题
免费电子挤压光腔模式
Optical-cavity mode squeezing by free electrons
论文作者
论文摘要
非经典光状态的产生在量子光学元件中至关重要,并且很大程度上依赖于强烈激光脉冲与非线性介质之间的相互作用。最近,已经提出了电子束,例如在超快电子显微镜中使用的电子束从样品中检索信息,以作为操纵明亮和深色的光学激发的工具,从而诱发了从相干到热混合物的光的半经典状态。在这里,我们表明,对电子 - 腔腔相互作用的浮动量贡献,我们认为这对于受强限制在近场的低能电子而言是重要的,实际上可以创建一组更通用的光学状态,包括相干和挤压状态。交互后电子光谱进一步揭示了$ a^2 $项在轻度耦合汉密尔顿的非平地作用的特征,尤其是当腔体以前被混乱或相干照明激发时。我们的工作引入了一种破坏性的方法来创建非平凡的量子腔状态,以实现量子信息和光学应用,同时提出了对电子束成型的未开发的可能性。
The generation of nonclassical light states bears a paramount importance in quantum optics and is largely relying on the interaction between intense laser pulses and nonlinear media. Recently, electron beams, such as those used in ultrafast electron microscopy to retrieve information from a specimen, have been proposed as a tool to manipulate both bright and dark confined optical excitations, inducing semiclassical states of light that range from coherent to thermal mixtures. Here, we show that the ponderomotive contribution to the electron-cavity interaction, which we argue to be significant for low-energy electrons subject to strongly confined near-fields, can actually create a more general set of optical states, including coherent and squeezed states. The post-interaction electron spectrum further reveals signatures of the nontrivial role played by $A^2$ terms in the light-matter coupling Hamiltonian, particularly when the cavity is previously excited by either chaotic or coherent illumination. Our work introduces a disruptive approach to the creation of nontrivial quantum cavity states for quantum information and optics applications, while it suggests unexplored possibilities for electron beam shaping.