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Chiral cavity quantum electrodynamics

delete2022-07-28
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PRE
AI
J
John Clai Owens
M
Margaret G. Panetta
B
Brendan Saxberg
G
Gabrielle Roberts
S
Srivatsan Chakram
R
Ruichao Ma
A
Andrei Vrajitoarea
J
Jonathan Simon
D
David Schuster *
DOI:10.1038/s41567-022-01671-3delete
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摘要

摘要

En 中文
Cavity quantum electrodynamics, which explores the granularity of light by coupling a resonator to a nonlinear emitter(1), has played a foundational role in the development of modern quantum information science and technology. In parallel, the field of condensed matter physics has been revolutionized by the discovery of underlying topological(2-4), often arising from the breaking of time-reversal symmetry, as in the case of the quantum Hall effect. In this work, we explore the cavity quantum electrodynamics of a transmon qubit in a topologically nontrivial Harper-Hofstadter lattice(5). We assemble the lattice of niobium superconducting resonators(6) and break time-reversal symmetry by introducing ferrimagnets(7) before coupling the system to a transmon qubit. We spectroscopically resolve the individual bulk and edge modes of the lattice, detect Rabi oscillations between the excited transmon and each mode and measure the synthetic-vacuum-induced Lamb shift of the transmon. Finally, we demonstrate the ability to employ the transmon to count individual photons(8) within each mode of the topological band structure. This work opens the field of experimental chiral quantum optics(9), enabling topological many-body physics with microwave photons (10,11) and providing a route to backscatter-resilient quantum communication.
Keyword:
STATES
PHOTONS

期刊

Nature Physics 封面图
Nature Physics
IF:
18.4
论文数:
6.7K
被引数:
5.7W

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R
rutgers university system
学者数:
4.1W
论文数: 3.7W
被引数: 53
U
university of chicago
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4.5W
论文数: 3.7W
被引数: 80
R
rutgers university new brunswick
学者数:
2.3W
论文数: 1.9W
被引数: 32
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