Site-resolved imaging of ultracold fermions in a triangular-lattice quantum gas microscope
Quantum gas microscopes have expanded the capabilities of quantum simulation of Hubbard models by enabling the study of spatial spin and density correlations in square lattices. However, quantum gas microscopes have not been realized for fermionic atoms in frustrated geometries. Here, we demonstrate...
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description | Quantum gas microscopes have expanded the capabilities of quantum simulation of Hubbard models by enabling the study of spatial spin and density correlations in square lattices. However, quantum gas microscopes have not been realized for fermionic atoms in frustrated geometries. Here, we demonstrate the single-atom resolved imaging of ultracold fermionic \(^{6}\)Li atoms in a triangular optical lattice with a lattice constant of 1003 nm. The optical lattice is formed by a recycled narrow-linewidth, high-power laser combined with a light sheet to allow for Raman sideband cooling on the \(D_1\) line. We optically resolve single atoms on individual lattice sites using a high-resolution objective to collect scattered photons while cooling them close to the two-dimensional ground vibrational level in each lattice site. By reconstructing the lattice occupation, we measure an imaging fidelity of ~98%. Our new triangular lattice microscope platform for fermions clears the path for studying spin-spin correlations, entanglement and dynamics of geometrically frustrated Hubbard systems which are expected to exhibit exotic emergent phenomena including spin liquids and kinetic frustration. |
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However, quantum gas microscopes have not been realized for fermionic atoms in frustrated geometries. Here, we demonstrate the single-atom resolved imaging of ultracold fermionic \(^{6}\)Li atoms in a triangular optical lattice with a lattice constant of 1003 nm. The optical lattice is formed by a recycled narrow-linewidth, high-power laser combined with a light sheet to allow for Raman sideband cooling on the \(D_1\) line. We optically resolve single atoms on individual lattice sites using a high-resolution objective to collect scattered photons while cooling them close to the two-dimensional ground vibrational level in each lattice site. By reconstructing the lattice occupation, we measure an imaging fidelity of ~98%. Our new triangular lattice microscope platform for fermions clears the path for studying spin-spin correlations, entanglement and dynamics of geometrically frustrated Hubbard systems which are expected to exhibit exotic emergent phenomena including spin liquids and kinetic frustration.</description><identifier>EISSN: 2331-8422</identifier><identifier>DOI: 10.48550/arxiv.2102.11862</identifier><language>eng</language><publisher>Ithaca: Cornell University Library, arXiv.org</publisher><subject>Correlation analysis ; Fermions ; High power lasers ; Imaging ; Laser cooling ; Lattice parameters ; Lattice sites ; Light sheets ; Microscopes ; Optical lattices ; Physics - Atomic Physics ; Physics - Quantum Gases ; Quantum entanglement ; Spin dynamics</subject><ispartof>arXiv.org, 2021-02</ispartof><rights>2021. This work is published under http://arxiv.org/licenses/nonexclusive-distrib/1.0/ (the “License”). 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Our new triangular lattice microscope platform for fermions clears the path for studying spin-spin correlations, entanglement and dynamics of geometrically frustrated Hubbard systems which are expected to exhibit exotic emergent phenomena including spin liquids and kinetic frustration.</description><subject>Correlation analysis</subject><subject>Fermions</subject><subject>High power lasers</subject><subject>Imaging</subject><subject>Laser cooling</subject><subject>Lattice parameters</subject><subject>Lattice sites</subject><subject>Light sheets</subject><subject>Microscopes</subject><subject>Optical lattices</subject><subject>Physics - Atomic Physics</subject><subject>Physics - Quantum Gases</subject><subject>Quantum entanglement</subject><subject>Spin dynamics</subject><issn>2331-8422</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><sourceid>ABUWG</sourceid><sourceid>AFKRA</sourceid><sourceid>AZQEC</sourceid><sourceid>BENPR</sourceid><sourceid>CCPQU</sourceid><sourceid>DWQXO</sourceid><sourceid>GOX</sourceid><recordid>eNotkD1rwzAURUWh0JDmB3SqoLNTvydLkcYS-gWBDs3UxciyZBRsK5Hk0P77pkmnuxwu91xC7qBcVpLz8lHHb39cIpS4BJACr8gMGYNCVog3ZJHSrixLFCvknM3I16fPtog2hf5oW-oH3fmxo8HRqc9Rm9C31Nk4-DAm6keqaY5ej93U61j0OmdvLD1MeszTQDud6OBNDMmEvb0l1073yS7-c062L8_b9Vux-Xh9Xz9tCs0RCmiVUdpVIMAiKNswo_mqAY6ikqAktIxbDlxI1TYgm5ahBcO1cwxKJh2bk_tL7Vm83seTQ_yp_w6ozweciIcLsY_hMNmU612Y4njaVGOlUIIQCtgvAzZelQ</recordid><startdate>20210223</startdate><enddate>20210223</enddate><creator>Yang, Jin</creator><creator>Liu, Liyu</creator><creator>Mongkolkiattichai, Jirayu</creator><creator>Schauss, Peter</creator><general>Cornell University Library, arXiv.org</general><scope>8FE</scope><scope>8FG</scope><scope>ABJCF</scope><scope>ABUWG</scope><scope>AFKRA</scope><scope>AZQEC</scope><scope>BENPR</scope><scope>BGLVJ</scope><scope>CCPQU</scope><scope>DWQXO</scope><scope>HCIFZ</scope><scope>L6V</scope><scope>M7S</scope><scope>PIMPY</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PRINS</scope><scope>PTHSS</scope><scope>GOX</scope></search><sort><creationdate>20210223</creationdate><title>Site-resolved imaging of ultracold fermions in a triangular-lattice quantum gas microscope</title><author>Yang, Jin ; 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However, quantum gas microscopes have not been realized for fermionic atoms in frustrated geometries. Here, we demonstrate the single-atom resolved imaging of ultracold fermionic \(^{6}\)Li atoms in a triangular optical lattice with a lattice constant of 1003 nm. The optical lattice is formed by a recycled narrow-linewidth, high-power laser combined with a light sheet to allow for Raman sideband cooling on the \(D_1\) line. We optically resolve single atoms on individual lattice sites using a high-resolution objective to collect scattered photons while cooling them close to the two-dimensional ground vibrational level in each lattice site. By reconstructing the lattice occupation, we measure an imaging fidelity of ~98%. Our new triangular lattice microscope platform for fermions clears the path for studying spin-spin correlations, entanglement and dynamics of geometrically frustrated Hubbard systems which are expected to exhibit exotic emergent phenomena including spin liquids and kinetic frustration.</abstract><cop>Ithaca</cop><pub>Cornell University Library, arXiv.org</pub><doi>10.48550/arxiv.2102.11862</doi><oa>free_for_read</oa></addata></record> |
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subjects | Correlation analysis Fermions High power lasers Imaging Laser cooling Lattice parameters Lattice sites Light sheets Microscopes Optical lattices Physics - Atomic Physics Physics - Quantum Gases Quantum entanglement Spin dynamics |
title | Site-resolved imaging of ultracold fermions in a triangular-lattice quantum gas microscope |
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