Velocity Scanning Tomography for Room-Temperature Quantum Simulation

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Hauptverfasser: Wang, Jiefei, Mao, Ruosong, Xu, Xingqi, Lu, Yunzhou, Dai, Jianhao, Liu, Xiao, Liu, Gang-Qin, Lu, Dawei, Hu, Huizhu, Zhu, Shi-Yao, Cai, Han, Wang, Da-Wei
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Veröffentlicht: 2024
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author Wang, Jiefei
Mao, Ruosong
Xu, Xingqi
Lu, Yunzhou
Dai, Jianhao
Liu, Xiao
Liu, Gang-Qin
Lu, Dawei
Hu, Huizhu
Zhu, Shi-Yao
Cai, Han
Wang, Da-Wei
author_facet Wang, Jiefei
Mao, Ruosong
Xu, Xingqi
Lu, Yunzhou
Dai, Jianhao
Liu, Xiao
Liu, Gang-Qin
Lu, Dawei
Hu, Huizhu
Zhu, Shi-Yao
Cai, Han
Wang, Da-Wei
contents Quantum simulation offers an analog approach for exploring exotic quantum phenomena using controllable platforms, typically necessitating ultracold temperatures to maintain the quantum coherence. Superradiance lattices (SLs) have been harnessed to simulate coherent topological physics at room temperature, but the thermal motion of atoms remains a notable challenge in accurately measuring the physical quantities. To overcome this obstacle, we invent and validate a velocity scanning tomography technique to discern the responses of atoms with different velocities, allowing cold-atom spectroscopic resolution within room-temperature SLs. By comparing absorption spectra with and without atoms moving at specific velocities, we can derive the Wannier-Stark ladders of the SL across various effective static electric fields, their strengths being proportional to the atomic velocities. We extract the Zak phase of the SL by monitoring the ladder frequency shift as a function of the atomic velocity, effectively demonstrating the topological winding of the energy bands. Our research signifies the feasibility of room-temperature quantum simulation and facilitates their applications in quantum information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2406_02494
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Velocity Scanning Tomography for Room-Temperature Quantum Simulation
Wang, Jiefei
Mao, Ruosong
Xu, Xingqi
Lu, Yunzhou
Dai, Jianhao
Liu, Xiao
Liu, Gang-Qin
Lu, Dawei
Hu, Huizhu
Zhu, Shi-Yao
Cai, Han
Wang, Da-Wei
Quantum Physics
Quantum Gases
Optics
Quantum simulation offers an analog approach for exploring exotic quantum phenomena using controllable platforms, typically necessitating ultracold temperatures to maintain the quantum coherence. Superradiance lattices (SLs) have been harnessed to simulate coherent topological physics at room temperature, but the thermal motion of atoms remains a notable challenge in accurately measuring the physical quantities. To overcome this obstacle, we invent and validate a velocity scanning tomography technique to discern the responses of atoms with different velocities, allowing cold-atom spectroscopic resolution within room-temperature SLs. By comparing absorption spectra with and without atoms moving at specific velocities, we can derive the Wannier-Stark ladders of the SL across various effective static electric fields, their strengths being proportional to the atomic velocities. We extract the Zak phase of the SL by monitoring the ladder frequency shift as a function of the atomic velocity, effectively demonstrating the topological winding of the energy bands. Our research signifies the feasibility of room-temperature quantum simulation and facilitates their applications in quantum information processing.
title Velocity Scanning Tomography for Room-Temperature Quantum Simulation
topic Quantum Physics
Quantum Gases
Optics
url https://arxiv.org/abs/2406.02494