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调频下的量子系统。

Quantum systems under frequency modulation.

机构信息

Department of Physics, University of Oulu, PO Box 3000, FI-90014, Finland. Department of Physics, Yale University, New Haven, CT 06520, United States of America.

出版信息

Rep Prog Phys. 2017 May;80(5):056002. doi: 10.1088/1361-6633/aa5170. Epub 2017 Apr 5.

DOI:10.1088/1361-6633/aa5170
PMID:28379844
Abstract

We review the physical phenomena that arise when quantum mechanical energy levels are modulated in time. The dynamics resulting from changes in the transition frequency is a problem studied since the early days of quantum mechanics. It has been of constant interest both experimentally and theoretically since, with the simple two-state model providing an inexhaustible source of novel concepts. When the transition frequency of a quantum system is modulated, several phenomena can be observed, such as Landau-Zener-Stückelberg-Majorana interference, motional averaging and narrowing, and the formation of dressed states with the appearance of sidebands in the spectrum. Adiabatic changes result in the accumulation of geometric phases, which can be used to create topological states. In recent years, an exquisite experimental control in the time domain was gained through the parameters entering the Hamiltonian, and high-fidelity readout schemes allowed the state of the system to be monitored non-destructively. These developments were made in the field of quantum devices, especially in superconducting qubits, as a well as in atomic physics, in particular in ultracold gases. As a result of these advances, it became possible to demonstrate many of the fundamental effects that arise in a quantum system when its transition frequencies are modulated. The purpose of this review is to present some of these developments, from two-state atoms and harmonic oscillators to multilevel and many-particle systems.

摘要

我们回顾了量子能级随时间调制时出现的物理现象。由于跃迁频率的变化而产生的动力学是自量子力学早期以来就一直在研究的问题。自从简单的双态模型提供了无穷无尽的新概念来源以来,它在实验和理论上都一直受到持续关注。当量子系统的跃迁频率发生调制时,可以观察到几种现象,例如朗道-曾泽尔-斯图克尔伯格-马约拉纳干涉、运动平均和变窄,以及形成具有频谱边带的 dressed 态。绝热变化导致几何相位的积累,这可用于创建拓扑态。近年来,通过进入哈密顿量的参数在时域中获得了精细的实验控制,并且高保真度的读出方案允许非破坏性地监测系统的状态。这些进展是在量子器件领域取得的,特别是在超导量子比特中,以及在原子物理学中,特别是在超冷气体中。由于这些进展,现在可以证明当量子系统的跃迁频率发生调制时,系统中出现的许多基本效应。本文的目的是介绍其中的一些发展,从双态原子和谐振子到多能级和多粒子系统。

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