Observation of electric field induced superradiance slowdown in ultracold Rydberg atomic gases

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Main Authors: He, Yunhui, Bai, Jingxu, Jiao, Yuechun, Li, Weibin, zhao, Jianming
Format: Preprint
Published: 2024
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_version_ 1866917838407598080
author He, Yunhui
Bai, Jingxu
Jiao, Yuechun
Li, Weibin
zhao, Jianming
author_facet He, Yunhui
Bai, Jingxu
Jiao, Yuechun
Li, Weibin
zhao, Jianming
contents Atoms excited to electronically high-lying Rydberg states decay to low-energy states through spontaneous emission processes. We investigate the impact of a static electric field on the superradiant emission process between Rydberg $|60D_{5/2}\rangle$ and $|61P_{3/2}\rangle$ states in an ultracold Cesium Rydberg atom ensemble. We report experimental observations of a significant slowdown in superradiance upon applying an electric field. To understand the slowing down dynamics, we employ a discrete truncated Wigner approximation (DTWA) method to solve the corresponding master equation numerically. Our numerical simulations demonstrate that superradiance decoherence is caused by the Stark shifts of the Rydberg level. Our theoretical simulations qualitatively match the experimental observations. Our work provides new insights into controlling quantum critical behaviors, with implications for quantum many-body dynamics, and the study of quantum phase transitions.
format Preprint
id arxiv_https___arxiv_org_abs_2408_12268
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Observation of electric field induced superradiance slowdown in ultracold Rydberg atomic gases
He, Yunhui
Bai, Jingxu
Jiao, Yuechun
Li, Weibin
zhao, Jianming
Atomic Physics
Quantum Physics
Atoms excited to electronically high-lying Rydberg states decay to low-energy states through spontaneous emission processes. We investigate the impact of a static electric field on the superradiant emission process between Rydberg $|60D_{5/2}\rangle$ and $|61P_{3/2}\rangle$ states in an ultracold Cesium Rydberg atom ensemble. We report experimental observations of a significant slowdown in superradiance upon applying an electric field. To understand the slowing down dynamics, we employ a discrete truncated Wigner approximation (DTWA) method to solve the corresponding master equation numerically. Our numerical simulations demonstrate that superradiance decoherence is caused by the Stark shifts of the Rydberg level. Our theoretical simulations qualitatively match the experimental observations. Our work provides new insights into controlling quantum critical behaviors, with implications for quantum many-body dynamics, and the study of quantum phase transitions.
title Observation of electric field induced superradiance slowdown in ultracold Rydberg atomic gases
topic Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2408.12268