Pairing particles into holonomies

Fuente: arXiv
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Main Authors: Neef, Vera, Heinrich, Matthias, Wolterink, Tom A. W., Szameit, Alexander
Format: Preprint
Published: 2025
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author Neef, Vera
Heinrich, Matthias
Wolterink, Tom A. W.
Szameit, Alexander
author_facet Neef, Vera
Heinrich, Matthias
Wolterink, Tom A. W.
Szameit, Alexander
contents Holonomies are of great interest to quantum computation and simulation. The geometrical nature of these entities offers increased stability to quantum gates. Furthermore, symmetries of particle physics are naturally reflected in holonomies, making them ideally suited for quantum simulation of quantum chromodynamics and grand unified theories. Yet, practically designing quantum holonomies with the required properties and scale is challenging. Here, we construct a new class of holonomies by increasing the particle number. We show that multi-particle holonomies can even exist in systems devoid of any single-particle holonomies. We present a comprehensive framework for multi-particle quantum holonomies and experimentally realize various two-particle holonomies in integrated photonics. Our results enable particle number to be harnessed as a design parameter, offering increased freedom in constructing holonomies for quantum computation and simulation.
format Preprint
id arxiv_https___arxiv_org_abs_2506_13442
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Pairing particles into holonomies
Neef, Vera
Heinrich, Matthias
Wolterink, Tom A. W.
Szameit, Alexander
Quantum Physics
Holonomies are of great interest to quantum computation and simulation. The geometrical nature of these entities offers increased stability to quantum gates. Furthermore, symmetries of particle physics are naturally reflected in holonomies, making them ideally suited for quantum simulation of quantum chromodynamics and grand unified theories. Yet, practically designing quantum holonomies with the required properties and scale is challenging. Here, we construct a new class of holonomies by increasing the particle number. We show that multi-particle holonomies can even exist in systems devoid of any single-particle holonomies. We present a comprehensive framework for multi-particle quantum holonomies and experimentally realize various two-particle holonomies in integrated photonics. Our results enable particle number to be harnessed as a design parameter, offering increased freedom in constructing holonomies for quantum computation and simulation.
title Pairing particles into holonomies
topic Quantum Physics
url https://arxiv.org/abs/2506.13442