Data underpinning "Measurement-Induced Dark State Phase Transitions in Long-Ranged Fermion Systems"
Authors/Creators
- 1. University of Cologne
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.
Files
Longrangepaper.zip
Files
(6.4 MB)
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Additional details
Related works
- Is metadata for
- 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