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Probing critical phenomena in open quantum systems using atom arrays

Authors :
Fang, Fang
Wang, Kenneth
Liu, Vincent S.
Wang, Yu
Cimmino, Ryan
Wei, Julia
Bintz, Marcus
Parr, Avery
Kemp, Jack
Ni, Kang-Kuen
Yao, Norman Y.
Publication Year :
2024

Abstract

At continuous phase transitions, quantum many-body systems exhibit scale-invariance and complex, emergent universal behavior. Most strikingly, at a quantum critical point, correlations decay as a power law, with exponents determined by a set of universal scaling dimensions. Experimentally probing such power-law correlations is extremely challenging, owing to the complex interplay between decoherence, the vanishing energy gap, and boundary effects. Here, we employ a Rydberg quantum simulator to adiabatically prepare critical ground states of both a one-dimensional ring and a two-dimensional square lattice. By accounting for and tuning the openness of our quantum system, which is well-captured by the introduction of a single phenomenological length scale, we are able to directly observe power-law correlations and extract the corresponding scaling dimensions. Moreover, in two dimensions, we observe a decoupling between phase transitions in the bulk and on the boundary, allowing us to identify two distinct boundary universality classes. Our work demonstrates that direct adiabatic preparation of critical states in quantum simulators can complement recent approaches to studying quantum criticality using the Kibble-Zurek mechanism or digital quantum circuits.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2402.15376
Document Type :
Working Paper