Ben Hayun A, Reinhardt O, Nemirovsky J, Karnieli A, Rivera N, Kaminer I
Department of Electrical Engineering and Solid State Institute, Technion, Israel Institute of Technology, Haifa 32000, Israel.
Sackler School of Physics, Faculty of Exact Sciences, Tel Aviv University, Tel Aviv 69978, Israel.
Sci Adv. 2021 Mar 10;7(11). doi: 10.1126/sciadv.abe4270. Print 2021 Mar.
It is a long-standing goal to create light with unique quantum properties such as squeezing and entanglement. We propose the generation of quantum light using free-electron interactions, going beyond their already ubiquitous use in generating classical light. This concept is motivated by developments in electron microscopy, which recently demonstrated quantum free-electron interactions with light in photonic cavities. Such electron microscopes provide platforms for shaping quantum states of light through a judicious choice of the input light and electron states. Specifically, we show how electron energy combs implement photon displacement operations, creating displaced-Fock and displaced-squeezed states. We develop the theory for consecutive electron-cavity interactions with a common cavity and show how to generate any target Fock state. Looking forward, exploiting the degrees of freedom of electrons, light, and their interaction may achieve complete control over the quantum state of the generated light, leading to novel light statistics and correlations.
创造具有诸如压缩和纠缠等独特量子特性的光,是一个长期目标。我们提出利用自由电子相互作用来产生量子光,这超越了自由电子在产生经典光方面已无处不在的应用。这一概念的灵感来自于电子显微镜的发展,最近电子显微镜已证明了在光子腔中自由电子与光的量子相互作用。此类电子显微镜通过明智地选择输入光和电子态,为塑造光的量子态提供了平台。具体而言,我们展示了电子能量梳如何实现光子位移操作,从而产生位移福克态和位移压缩态。我们针对与公共腔的连续电子 - 腔相互作用发展了理论,并展示了如何生成任何目标福克态。展望未来,利用电子、光及其相互作用的自由度,可能实现对所产生光的量子态的完全控制,从而带来新颖的光统计特性和相关性。