Universal Dynamics with Globally Controlled Analog Quantum Simulators

Fuente: arXiv
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Main Authors: Hu, Hong-Ye, Gomez, Abigail McClain, Chen, Liyuan, Trowbridge, Aaron, Goldschmidt, Andy J., Manchester, Zachary, Chong, Frederic T., Jaffe, Arthur, Yelin, Susanne F.
Format: Preprint
Published: 2025
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author Hu, Hong-Ye
Gomez, Abigail McClain
Chen, Liyuan
Trowbridge, Aaron
Goldschmidt, Andy J.
Manchester, Zachary
Chong, Frederic T.
Jaffe, Arthur
Yelin, Susanne F.
author_facet Hu, Hong-Ye
Gomez, Abigail McClain
Chen, Liyuan
Trowbridge, Aaron
Goldschmidt, Andy J.
Manchester, Zachary
Chong, Frederic T.
Jaffe, Arthur
Yelin, Susanne F.
contents Analog quantum simulators with global control fields have emerged as powerful platforms for exploring complex quantum phenomena. Despite these advances, a fundamental theoretical question remains unresolved: to what extent can such systems realize universal quantum dynamics under global control? Here we establish a necessary and sufficient condition for universal quantum computation using only global pulse control, proving that a broad class of analog quantum simulators is, in fact, universal. We further extend this framework to fermionic and bosonic systems, including modern platforms such as ultracold atoms in optical superlattices. Moreover, we observe that analog simulators driven by random global pulses exhibit information scrambling comparable to random unitary circuits. In a dual-species neutral-atom array setup, the measurement outcomes anti-concentrate on a $\log N$ timescale despite the presence of only temporal randomness, opening opportunities for efficient randomness generation. To bridge theoretical possibility with experimental reality, we introduce \emph{direct quantum optimal control}, a control framework that enables the synthesis of complex effective Hamiltonians while incorporating realistic hardware constraints. Using this approach, we experimentally engineer three-body interactions outside the blockade regime and demonstrate topological dynamics on a Rydberg-atom array. Experimental measurements reveal dynamical signatures of symmetry-protected-topological edge modes, confirming both the expressivity and feasibility of our method. Our work opens a new avenue for quantum simulation beyond native hardware Hamiltonians, enabling the engineering of effective multi-body interactions and advancing the frontier of quantum information processing with globally-controlled analog platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2508_19075
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Universal Dynamics with Globally Controlled Analog Quantum Simulators
Hu, Hong-Ye
Gomez, Abigail McClain
Chen, Liyuan
Trowbridge, Aaron
Goldschmidt, Andy J.
Manchester, Zachary
Chong, Frederic T.
Jaffe, Arthur
Yelin, Susanne F.
Quantum Physics
Quantum Gases
Strongly Correlated Electrons
Machine Learning
Systems and Control
Analog quantum simulators with global control fields have emerged as powerful platforms for exploring complex quantum phenomena. Despite these advances, a fundamental theoretical question remains unresolved: to what extent can such systems realize universal quantum dynamics under global control? Here we establish a necessary and sufficient condition for universal quantum computation using only global pulse control, proving that a broad class of analog quantum simulators is, in fact, universal. We further extend this framework to fermionic and bosonic systems, including modern platforms such as ultracold atoms in optical superlattices. Moreover, we observe that analog simulators driven by random global pulses exhibit information scrambling comparable to random unitary circuits. In a dual-species neutral-atom array setup, the measurement outcomes anti-concentrate on a $\log N$ timescale despite the presence of only temporal randomness, opening opportunities for efficient randomness generation. To bridge theoretical possibility with experimental reality, we introduce \emph{direct quantum optimal control}, a control framework that enables the synthesis of complex effective Hamiltonians while incorporating realistic hardware constraints. Using this approach, we experimentally engineer three-body interactions outside the blockade regime and demonstrate topological dynamics on a Rydberg-atom array. Experimental measurements reveal dynamical signatures of symmetry-protected-topological edge modes, confirming both the expressivity and feasibility of our method. Our work opens a new avenue for quantum simulation beyond native hardware Hamiltonians, enabling the engineering of effective multi-body interactions and advancing the frontier of quantum information processing with globally-controlled analog platforms.
title Universal Dynamics with Globally Controlled Analog Quantum Simulators
topic Quantum Physics
Quantum Gases
Strongly Correlated Electrons
Machine Learning
Systems and Control
url https://arxiv.org/abs/2508.19075