Quantum Cellular Automata on a Dual-Species Rydberg Processor

Fuente: arXiv
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Main Authors: White, Ryan, Ramesh, Vikram, Impertro, Alexander, Anand, Shraddha, Cesa, Francesco, Giudici, Giuliano, Iadecola, Thomas, Pichler, Hannes, Bernien, Hannes
Format: Preprint
Published: 2026
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author White, Ryan
Ramesh, Vikram
Impertro, Alexander
Anand, Shraddha
Cesa, Francesco
Giudici, Giuliano
Iadecola, Thomas
Pichler, Hannes
Bernien, Hannes
author_facet White, Ryan
Ramesh, Vikram
Impertro, Alexander
Anand, Shraddha
Cesa, Francesco
Giudici, Giuliano
Iadecola, Thomas
Pichler, Hannes
Bernien, Hannes
contents As quantum devices scale to larger and larger sizes, a significant challenge emerges in scaling their coherent controls accordingly. Quantum cellular automata (QCAs) constitute a promising framework that bypasses this control problem: universal dynamics can be achieved using only a static qubit array and global control operations. Despite an extensive history of theoretical explorations and proposals, QCAs have not been experimentally explored in the context of highly-scalable globally-controlled systems. Here we realize QCAs on a dual-species Rydberg array of rubidium and cesium atoms, leveraging independent global control of each species to perform multiple quantum protocols. Seeding an automaton with different initial states, we explore many-body dynamics of quasiparticles and grow GHZ states across both species, highlighting the flexibility of our approach. We further develop a second automaton using a novel mediated entangling gate, enabling generation of 96.7(1.7)%-fidelity Bell states, 17-qubit cluster states, and high-connectivity graph states. Our results demonstrate that simple global controls enable access to a rich variety of applications through the QCA framework. The versatility and scalability of QCAs present compelling opportunities for the development of quantum information systems, as well as new perspectives on quantum many-body dynamics.
format Preprint
id arxiv_https___arxiv_org_abs_2601_16257
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantum Cellular Automata on a Dual-Species Rydberg Processor
White, Ryan
Ramesh, Vikram
Impertro, Alexander
Anand, Shraddha
Cesa, Francesco
Giudici, Giuliano
Iadecola, Thomas
Pichler, Hannes
Bernien, Hannes
Quantum Physics
Quantum Gases
As quantum devices scale to larger and larger sizes, a significant challenge emerges in scaling their coherent controls accordingly. Quantum cellular automata (QCAs) constitute a promising framework that bypasses this control problem: universal dynamics can be achieved using only a static qubit array and global control operations. Despite an extensive history of theoretical explorations and proposals, QCAs have not been experimentally explored in the context of highly-scalable globally-controlled systems. Here we realize QCAs on a dual-species Rydberg array of rubidium and cesium atoms, leveraging independent global control of each species to perform multiple quantum protocols. Seeding an automaton with different initial states, we explore many-body dynamics of quasiparticles and grow GHZ states across both species, highlighting the flexibility of our approach. We further develop a second automaton using a novel mediated entangling gate, enabling generation of 96.7(1.7)%-fidelity Bell states, 17-qubit cluster states, and high-connectivity graph states. Our results demonstrate that simple global controls enable access to a rich variety of applications through the QCA framework. The versatility and scalability of QCAs present compelling opportunities for the development of quantum information systems, as well as new perspectives on quantum many-body dynamics.
title Quantum Cellular Automata on a Dual-Species Rydberg Processor
topic Quantum Physics
Quantum Gases
url https://arxiv.org/abs/2601.16257