论文标题

强烈激光互动的量子电动力学:量子状态工程的工具

Quantum electrodynamics of intense laser-matter interactions: A tool for quantum state engineering

论文作者

Stammer, Philipp, Rivera-Dean, Javier, Maxwell, Andrew, Lamprou, Theocharis, Ordóñez, Andres, Ciappina, Marcelo F., Tzallas, Paraskevas, Lewenstein, Maciej

论文摘要

自高功率激光器的发展以来,激烈的激光互动是研究和技术的兴趣中心。它们已被广泛用于原子,分子和光学物理学的基本研究,它们是Attosecond Physics和Ultrafast Opto-Electronics的核心。尽管这些研究中的大多数已成功地使用经典电磁场成功描述了,但是基于完全量化的方法的最新研究表明,强烈的激光 - 原子相互作用可用于生成可控制的高光子数 - 串联相干状态和相干状态叠加。在本教程中,我们提供了全面的全面量化激光 - 原子相互作用的描述。我们详细介绍了高谐波产生,高于阈值离子化的过程,并讨论了在半古典理论背景下无法揭示的新现象。我们提供了在不同电子过程上调节光场的描述,以及它们对光的量子状态工程的后果。最后,我们讨论了对更复杂材料的方法的扩展,以及量子技术对由Attosecond物理和量子信息科学共生组成的新光子平台的影响。

Intense laser-matter interactions are at the center of interest in research and technology since the development of high power lasers. They have been widely used for fundamental studies in atomic, molecular, and optical physics, and they are at the core of attosecond physics and ultrafast opto-electronics. Although the majority of these studies have been successfully described using classical electromagnetic fields, recent investigations based on fully quantized approaches have shown that intense laser-atom interactions can be used for the generation of controllable high-photon-number entangled coherent states and coherent state superpositions. In this tutorial, we provide a comprehensive fully quantized description of intense laser-atom interactions. We elaborate on the processes of high harmonic generation, above-threshold-ionization, and we discuss new phenomena that cannot be revealed within the context of semi-classical theories. We provide the description for conditioning the light field on different electronic processes, and their consequences for quantum state engineering of light. Finally, we discuss the extension of the approach to more complex materials, and the impact to quantum technologies for a new photonic platform composed by the symbiosis of attosecond physics and quantum information science.

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