Quantum Gas Microscopy of Fermions in the Continuum

Fuente: arXiv
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Autori principali: de Jongh, Tim, Verstraten, Joris, Dixmerias, Maxime, Daix, Cyprien, Peaudecerf, Bruno, Yefsah, Tarik
Natura: Preprint
Pubblicazione: 2024
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author de Jongh, Tim
Verstraten, Joris
Dixmerias, Maxime
Daix, Cyprien
Peaudecerf, Bruno
Yefsah, Tarik
author_facet de Jongh, Tim
Verstraten, Joris
Dixmerias, Maxime
Daix, Cyprien
Peaudecerf, Bruno
Yefsah, Tarik
contents Microscopically probing quantum many-body systems by resolving their constituent particles is essential for understanding quantum matter. In most physical systems, distinguishing individual particles, such as electrons in solids, or neutrons and quarks in neutron stars, is impossible. Atom-based quantum simulators offer a unique platform that enables the imaging of each particle in a many-body system. Until now, however, this capability has been limited to quantum systems in discretized space such as optical lattices and tweezers, where spatial degrees of freedom are quantized. Here, we introduce a novel method for imaging atomic quantum many-body systems in the continuum, allowing for in situ resolution of every particle. We demonstrate the capabilities of our approach on a two-dimensional atomic Fermi gas. We probe the density correlation functions, resolving their full spatial functional form, and reveal the shape of the Fermi hole arising from Pauli exclusion as a function of temperature. Our method opens the door to probing strongly-correlated quantum gases in the continuum with unprecedented spatial resolution, providing in situ access to spatially resolved correlation functions of arbitrarily high order across the entire system.
format Preprint
id arxiv_https___arxiv_org_abs_2411_08776
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum Gas Microscopy of Fermions in the Continuum
de Jongh, Tim
Verstraten, Joris
Dixmerias, Maxime
Daix, Cyprien
Peaudecerf, Bruno
Yefsah, Tarik
Quantum Gases
Atomic Physics
Quantum Physics
Microscopically probing quantum many-body systems by resolving their constituent particles is essential for understanding quantum matter. In most physical systems, distinguishing individual particles, such as electrons in solids, or neutrons and quarks in neutron stars, is impossible. Atom-based quantum simulators offer a unique platform that enables the imaging of each particle in a many-body system. Until now, however, this capability has been limited to quantum systems in discretized space such as optical lattices and tweezers, where spatial degrees of freedom are quantized. Here, we introduce a novel method for imaging atomic quantum many-body systems in the continuum, allowing for in situ resolution of every particle. We demonstrate the capabilities of our approach on a two-dimensional atomic Fermi gas. We probe the density correlation functions, resolving their full spatial functional form, and reveal the shape of the Fermi hole arising from Pauli exclusion as a function of temperature. Our method opens the door to probing strongly-correlated quantum gases in the continuum with unprecedented spatial resolution, providing in situ access to spatially resolved correlation functions of arbitrarily high order across the entire system.
title Quantum Gas Microscopy of Fermions in the Continuum
topic Quantum Gases
Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2411.08776