Transmon公司
量子位元
物理
量子光学
量子
电路量子电动力学
联轴节(管道)
Atom(片上系统)
电磁场
激发态
经典电磁学
电磁感应透明
原子物理学
囚禁离子量子计算机
偶极子
微波食品加热
量子力学
量子纠错
机械工程
计算机科学
工程类
嵌入式系统
作者
A. M. Vadiraj,Andreas Ask,Thomas McConkey,Ibrahim Nsanzineza,C. W. Sandbo Chang,Anton Frisk Kockum,C. M. Wilson
出处
期刊:Physical review
[American Physical Society]
日期:2021-02-15
卷期号:103 (2)
被引量:125
标识
DOI:10.1103/physreva.103.023710
摘要
Engineering light-matter interactions at the quantum level has been central to the pursuit of quantum optics for decades. Traditionally, this has been done by coupling emitters, typically natural atoms and ions, to quantized electromagnetic fields in optical and microwave cavities. In these systems, the emitter is approximated as an idealized dipole, as its physical size is orders of magnitude smaller than the wavelength of light. Recently, artificial atoms made from superconducting circuits have enabled new frontiers in light-matter coupling, including the study of ``giant'' atoms which cannot be approximated as simple dipoles. Here, we explore an implementation of a giant artificial atom, formed from a transmon qubit coupled to propagating microwaves at multiple points along an open transmission line. The nature of this coupling allows the qubit radiation field to interfere with itself, leading to some striking giant-atom effects. For instance, we observe strong frequency-dependent couplings of the qubit energy levels to the electromagnetic modes of the transmission line. Combined with the ability to in situ tune the qubit energy levels, we show that we can modify the relative coupling rates of multiple qubit transitions by more than an order of magnitude. By doing so, we engineer a metastable excited state, allowing us to operate the giant transmon as an effective lambda system where we clearly demonstrate electromagnetically induced transparency.
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