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Autori principali: Huang, Erdong, Huang, Jiayi, Yao, Hongshun, Wang, Xin, Liu, Jin-Guo
Natura: Preprint
Pubblicazione: 2026
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Accesso online:https://arxiv.org/abs/2604.04600
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author Huang, Erdong
Huang, Jiayi
Yao, Hongshun
Wang, Xin
Liu, Jin-Guo
author_facet Huang, Erdong
Huang, Jiayi
Yao, Hongshun
Wang, Xin
Liu, Jin-Guo
contents Assembling large-scale, defect-free Rydberg atom arrays is a key technology for neutral-atom quantum computation. Dynamic holographic optical tweezers enable the assembly and reconfiguration of such arrays, but phase mismatches between successive holograms can induce destructive interference and transient trap loss during spatial-light-modulator refresh. In this work, we introduce the weighted-projective Gerchberg--Saxton (WPGS) algorithm, a phase-stable approach to dynamic hologram updates for large-scale Rydberg atom-array reconfiguration. By enforcing inter-frame trap-phase continuity while retaining weighted intensity equalization, WPGS suppresses refresh-induced transient degradation. The phase-difference distribution between consecutive holograms further provides a simple diagnostic of transient robustness. Moreover, enforcing the phase constraint reduces the number of iterations required at each update step, thereby accelerating hologram generation. Numerical simulations of 2D and 3D reconfiguration with more than $10^3$ traps, including multilayer assembly and interlayer transport, show robust transient intensities and significantly faster updates than conventional methods. These results establish inter-frame phase continuity as a practical design principle for dynamic holographic control and scalable neutral-atom array reconfiguration.
format Preprint
id arxiv_https___arxiv_org_abs_2604_04600
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Phase-Stable Hologram Updates for Large-Scale Neutral-Atom Array Reconfiguration
Huang, Erdong
Huang, Jiayi
Yao, Hongshun
Wang, Xin
Liu, Jin-Guo
Quantum Physics
Atomic Physics
Assembling large-scale, defect-free Rydberg atom arrays is a key technology for neutral-atom quantum computation. Dynamic holographic optical tweezers enable the assembly and reconfiguration of such arrays, but phase mismatches between successive holograms can induce destructive interference and transient trap loss during spatial-light-modulator refresh. In this work, we introduce the weighted-projective Gerchberg--Saxton (WPGS) algorithm, a phase-stable approach to dynamic hologram updates for large-scale Rydberg atom-array reconfiguration. By enforcing inter-frame trap-phase continuity while retaining weighted intensity equalization, WPGS suppresses refresh-induced transient degradation. The phase-difference distribution between consecutive holograms further provides a simple diagnostic of transient robustness. Moreover, enforcing the phase constraint reduces the number of iterations required at each update step, thereby accelerating hologram generation. Numerical simulations of 2D and 3D reconfiguration with more than $10^3$ traps, including multilayer assembly and interlayer transport, show robust transient intensities and significantly faster updates than conventional methods. These results establish inter-frame phase continuity as a practical design principle for dynamic holographic control and scalable neutral-atom array reconfiguration.
title Phase-Stable Hologram Updates for Large-Scale Neutral-Atom Array Reconfiguration
topic Quantum Physics
Atomic Physics
url https://arxiv.org/abs/2604.04600