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Moiré cavity quantum electrodynamics

delete2025-05-23
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OA
AI
Y
Y.J. Wang
Q
Qi-Hang Ye
J
Jun-Yong Yan
Y
Yufei Qiao
Y
Yuxin Liu
Y
Yongzheng Ye
C
Chen Chen
C
Chenhui Li
Z
Z. M. Zhang
C
Chengnian Huang
Y
Yun Meng
K
Kai Zou
W
W. S. Zhan
C
Chao Zhao
胡晓龙 cover
胡晓龙 (Xiaolong Hu)
C
Clarence Augustine TH Tee
沙巍 (Wei E. I. Sha)
黄志翔 cover
黄志翔 (Zhixiang Huang)
刘会云 cover
刘会云 (Huiyun Liu)
C
Chao‐Yuan Jin *
L
Lei Ying *
F
Feng Liu *
DOI:10.1126/sciadv.adv8115delete
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Abstract

Abstract

En 中文
Quantum emitters are a key component in photonic quantum technologies. Enhancing single-photon emission by engineering their photonic environment is essential for improving overall efficiency in quantum information processing. However, this enhancement is often limited by the need for ultraprecise emitter placement within conventional photonic cavities. Inspired by the fascinating physics of moir & eacute; pattern, we propose a multilayer moir & eacute; photonic crystal with a robust isolated flatband. Theoretical analysis reveals that, with nearly infinite photonic density of states, the moir & eacute; cavity simultaneously has a high Purcell factor and large tolerance over the emitter's position, breaking the constraints of conventional cavities. We then experimentally demonstrate various cavity quantum electrodynamic phenomena with a quantum dot in moir & eacute; cavity. A large tuning range (up to 40-fold) of quantum dot's radiative lifetime is achieved through strong Purcell enhancement and inhibition effects. Our findings open the door for moir & eacute; flatband cavity-enhanced quantum light sources and quantum nodes for the quantum internet.
Keywords:
SOLID-STATE SOURCE
SPONTANEOUS EMISSION
DOT
INHIBITION
GENERATION
DYNAMICS
PHOTONS
LIGHT
GATE

Journal

Science Advances cover
Science Advances
IF:
12.5
Papers:
2.0W
Citations:
18.1W

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