Dynamical control in a prethermalized molecular ultracold plasma: Local dissipation drives global relaxation

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Hauptverfasser: Wang, Ruoxi, Allahverdian, Amin, Colombini, Smilla, Durand-Brousseau, Nathan, Marroquın, Kevin, Keller, James, Sous, John, Prem, Abhinav, Grant, Edward
Format: Preprint
Veröffentlicht: 2024
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author Wang, Ruoxi
Allahverdian, Amin
Colombini, Smilla
Durand-Brousseau, Nathan
Marroquın, Kevin
Keller, James
Sous, John
Prem, Abhinav
Grant, Edward
author_facet Wang, Ruoxi
Allahverdian, Amin
Colombini, Smilla
Durand-Brousseau, Nathan
Marroquın, Kevin
Keller, James
Sous, John
Prem, Abhinav
Grant, Edward
contents Prethermalization occurs as an important phase in the dynamics of many-body systems when strong coupling drives a quasi-equilibrium in a subspace separated from the thermodynamic equilibrium by the restriction of a gap in energy or other conserved quantity. Here, we report the signature of an enduring prethermal regime of arrested relaxation in the molecular ultracold plasma that forms following the avalanche of a state-selected Rydberg gas of nitric oxide. Electron collisions mix orbital angular momentum, scattering Rydberg molecules to states of very high-$\ell$. Spontaneous predissociation purifies this non-penetrating character, creating an extraordinary gap between the plasma states of $n \approx \ell$, with measured $n>200$ and penetrating states of $\ell = 0, ~1$ and 2. Evolution to a statistically equilibrated state of N and O atoms cannot occur without Rydberg electron penetration, and this gap blocks relaxation for a millisecond or more. Evolving through the critical phase, electrons that balance the NO$^+$ charge behave as though localized in the prethermal phase and play an ineffective role in bridging this gap. However, the application of a weak radiofrequency (RF) field promotes a dramatic degree of relaxation owing to electron collisions. On an entirely different scale, exciting a quantum-state transition in an exceedingly small fraction of the molecules in the prethermalized ensemble acts with even greater effect to drive the entire system toward equilibrium. We ascribe this to dissipative character added to a small fraction of the states in the prethermally localized ensemble. Using the Lindblad master equation, we illustrate qualitatively similar dynamics for a toy model of an open quantum system that consists of a localized set of spins on which dissipation acts locally at a single site.
format Preprint
id arxiv_https___arxiv_org_abs_2406_08433
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Dynamical control in a prethermalized molecular ultracold plasma: Local dissipation drives global relaxation
Wang, Ruoxi
Allahverdian, Amin
Colombini, Smilla
Durand-Brousseau, Nathan
Marroquın, Kevin
Keller, James
Sous, John
Prem, Abhinav
Grant, Edward
Quantum Gases
Disordered Systems and Neural Networks
Strongly Correlated Electrons
Prethermalization occurs as an important phase in the dynamics of many-body systems when strong coupling drives a quasi-equilibrium in a subspace separated from the thermodynamic equilibrium by the restriction of a gap in energy or other conserved quantity. Here, we report the signature of an enduring prethermal regime of arrested relaxation in the molecular ultracold plasma that forms following the avalanche of a state-selected Rydberg gas of nitric oxide. Electron collisions mix orbital angular momentum, scattering Rydberg molecules to states of very high-$\ell$. Spontaneous predissociation purifies this non-penetrating character, creating an extraordinary gap between the plasma states of $n \approx \ell$, with measured $n>200$ and penetrating states of $\ell = 0, ~1$ and 2. Evolution to a statistically equilibrated state of N and O atoms cannot occur without Rydberg electron penetration, and this gap blocks relaxation for a millisecond or more. Evolving through the critical phase, electrons that balance the NO$^+$ charge behave as though localized in the prethermal phase and play an ineffective role in bridging this gap. However, the application of a weak radiofrequency (RF) field promotes a dramatic degree of relaxation owing to electron collisions. On an entirely different scale, exciting a quantum-state transition in an exceedingly small fraction of the molecules in the prethermalized ensemble acts with even greater effect to drive the entire system toward equilibrium. We ascribe this to dissipative character added to a small fraction of the states in the prethermally localized ensemble. Using the Lindblad master equation, we illustrate qualitatively similar dynamics for a toy model of an open quantum system that consists of a localized set of spins on which dissipation acts locally at a single site.
title Dynamical control in a prethermalized molecular ultracold plasma: Local dissipation drives global relaxation
topic Quantum Gases
Disordered Systems and Neural Networks
Strongly Correlated Electrons
url https://arxiv.org/abs/2406.08433