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quant-ph2026

Inverse Quantum Simulation for Quantum Material Design

Christian Kokail, Pavel E. Dolgirev, Rick van Bijnen +3

Quantum simulation provides a powerful route for exploring many-body phenomena beyond the capabilities of classical computation. Existing approaches typically proceed in the forwar…

quant-ph2024

Error-corrected fermionic quantum processors with neutral atoms

Robert Ott, Daniel González-Cuadra, Torsten V. Zache +3

Many-body fermionic systems can be simulated in a hardware-efficient manner using a fermionic quantum processor. Neutral atoms trapped in optical potentials can realize such proces…

quant-ph2024

Observation of string breaking on a (2 + 1)D Rydberg quantum simulator

Daniel Gonzalez-Cuadra, Majd Hamdan, Torsten V. Zache +10

Lattice gauge theories (LGTs) describe a broad range of phenomena in condensed matter and particle physics. A prominent example is confinement, responsible for bounding quarks insi…

quant-ph2024

Probing topological entanglement on large scales

Robert Ott, Torsten V. Zache, Nishad Maskara +3

Topologically ordered quantum matter exhibits intriguing long-range patterns of entanglement, which reveal themselves in subsystem entropies. However, measuring such entropies, whi…

quant-ph2022

Propagation of errors and quantitative quantum simulation with quantum advantage

S. Flannigan, N. Pearson, G. H. Low +5

The rapid development in hardware for quantum computing and simulation has led to much interest in problems where these devices can exceed the capabilities of existing classical co…

quant-ph2019

Emerging 2D Gauge theories in Rydberg configurable arrays

A. Celi, B. Vermersch, O. Viyuela +3

Solving strongly coupled gauge theories in two or three spatial dimensions is of fundamental importance in several areas of physics ranging from high-energy physics to condensed ma…