The strongly driven Fermi polaron

Fuente: arXiv
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Autores principales: Vivanco, Franklin J., Schuckert, Alexander, Huang, Songtao, Schumacher, Grant L., Assumpção, Gabriel G. T., Ji, Yunpeng, Chen, Jianyi, Knap, Michael, Navon, Nir
Formato: Preprint
Publicado: 2023
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author Vivanco, Franklin J.
Schuckert, Alexander
Huang, Songtao
Schumacher, Grant L.
Assumpção, Gabriel G. T.
Ji, Yunpeng
Chen, Jianyi
Knap, Michael
Navon, Nir
author_facet Vivanco, Franklin J.
Schuckert, Alexander
Huang, Songtao
Schumacher, Grant L.
Assumpção, Gabriel G. T.
Ji, Yunpeng
Chen, Jianyi
Knap, Michael
Navon, Nir
contents Quasiparticles are emergent excitations of matter that underlie much of our understanding of quantum many-body systems. Therefore, the prospect of manipulating their properties with external fields -- or even destroying them -- has both fundamental and practical implications. However, in solid-state materials it is often challenging to understand how quasiparticles are modified by external fields owing to their complex interplay with other collective excitations, such as phonons. Here, we take advantage of the clean setting of homogeneous quantum gases and fast radio-frequency control to manipulate Fermi polarons -- quasiparticles formed by impurities interacting with a non-interacting Fermi gas -- from weak to ultrastrong drives. Exploiting two internal states of the impurity species, we develop a steady-state spectroscopy, from which we extract the energy of the driven polaron. We measure the decay rate and the quasiparticle residue of the driven polaron from the Rabi oscillations between the two internal states. At large drive strengths, the so-extracted quasiparticle residue exceeds unity, raising intriguing questions on the relationship between the Rabi oscillations and the impurity's spectral functions. Our experiment establishes the driven Fermi polaron as a promising platform for studying controllable quasiparticles in strongly driven quantum matter.
format Preprint
id arxiv_https___arxiv_org_abs_2308_05746
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle The strongly driven Fermi polaron
Vivanco, Franklin J.
Schuckert, Alexander
Huang, Songtao
Schumacher, Grant L.
Assumpção, Gabriel G. T.
Ji, Yunpeng
Chen, Jianyi
Knap, Michael
Navon, Nir
Quantum Gases
Statistical Mechanics
Atomic Physics
Quantum Physics
Quasiparticles are emergent excitations of matter that underlie much of our understanding of quantum many-body systems. Therefore, the prospect of manipulating their properties with external fields -- or even destroying them -- has both fundamental and practical implications. However, in solid-state materials it is often challenging to understand how quasiparticles are modified by external fields owing to their complex interplay with other collective excitations, such as phonons. Here, we take advantage of the clean setting of homogeneous quantum gases and fast radio-frequency control to manipulate Fermi polarons -- quasiparticles formed by impurities interacting with a non-interacting Fermi gas -- from weak to ultrastrong drives. Exploiting two internal states of the impurity species, we develop a steady-state spectroscopy, from which we extract the energy of the driven polaron. We measure the decay rate and the quasiparticle residue of the driven polaron from the Rabi oscillations between the two internal states. At large drive strengths, the so-extracted quasiparticle residue exceeds unity, raising intriguing questions on the relationship between the Rabi oscillations and the impurity's spectral functions. Our experiment establishes the driven Fermi polaron as a promising platform for studying controllable quasiparticles in strongly driven quantum matter.
title The strongly driven Fermi polaron
topic Quantum Gases
Statistical Mechanics
Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2308.05746