Neural quantum states simulate dissipative many-body emission dynamics for approximately 40 atoms in dense 1D and 2D arrays, revealing prominent subradiant behavior at late times.
Title resolution pending
2 Pith papers cite this work. Polarity classification is still indexing.
2
Pith papers citing it
fields
quant-ph 2representative citing papers
Superradiance in disordered 1D waveguide QED keeps its ideal N² peak-rate scaling, driven by spins that spontaneously order their phases according to their random positions.
citing papers explorer
-
Neural network modeling of many-body super- and sub-radiant dynamics
Neural quantum states simulate dissipative many-body emission dynamics for approximately 40 atoms in dense 1D and 2D arrays, revealing prominent subradiant behavior at late times.
-
Robust Superradiance and Spontaneous Spin Ordering in Disordered Waveguide Quantum Electrodynamics
Superradiance in disordered 1D waveguide QED keeps its ideal N² peak-rate scaling, driven by spins that spontaneously order their phases according to their random positions.