Published January 3, 2024 | Version v1

Data underpinning "Measurement-Induced Dark State Phase Transitions in Long-Ranged Fermion Systems"

Description

We provide the raw data used to produce the plots shown in our paper "Measurement-Induced Dark State Phase Transitions in Long-Ranged Fermion Systems" and a Jupyter Notebook that was used to plot the data.

Abstract

We identify an unconventional algebraic scaling phase in the quantum dynamics of long-range hopping, free fermions, which are exposed to continuous local measurements. The algebraic phase occurs for hopping decay exponents 1 < p ≲ 3=2, and features an algebraic entanglement entropy growth, and a slow algebraic decay of the density-density correlation function, both with a fractional exponent. It is separated from a critical phase with logarithmic entanglement growth at small, and an area law phase with constant entanglement entropy at large monitoring rates. A perturbative renormalization group analysis predicts that the transitions to the long-range phase correspond to an unconventional, modified sine-Gordon theory. Exact numerical simulations of the monitored wave functions are in excellent agreement with an analytical replica field theory approach, which confirms the view of the measurement-induced phase transition as a quantum phase transition in the dark state of an effective, non-Hermitian Hamiltonian.

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Longrangepaper.zip

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Additional details

Related works

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Publication: 10.1103/PhysRevLett.128.010605 (DOI)

Funding

Deutsche Forschungsgemeinschaft
Excellence Strategy Cluster of Excellence Matter and Light for Quantum Computing (ML4Q) EXC 2004/1 390534769
Deutsche Forschungsgemeinschaft
Collaborative Research Center (CRC) 183 Project No. 277101999—project B02
European Research Council
Horizon 2020 research and innovation program No. 647434 (DOQS)
Deutsche Forschungsgemeinschaft
SPP 1929 GiRyd DI 1745/2-1