Correlation effects and collective excitations in bosonic bilayers: role of quantum statistics, superfluidity and dimerization transition
Alexey Filinov

TL;DR
This paper investigates how interlayer dimerization affects correlation functions, collective excitations, and superfluidity in a 2D dipolar bosonic bilayer system using quantum Monte Carlo simulations.
Contribution
It provides a detailed analysis of the transition from weakly to strongly bound dimers and its impact on collective modes and superfluid response, using advanced simulation and reconstruction methods.
Findings
Dimerization causes suppression of superfluidity and rotonization of excitations.
The antisymmetric mode spectrum is strongly affected by superfluid fraction.
Spectral weight shifts from acoustic to optical modes as superfluidity diminishes.
Abstract
A two-component two-dimensional (2D) dipolar bosonic system in the bilayer geometry is considered. By performing quantum Monte Carlo simulations in a wide range of layer spacings we analyze in detail the pair correlation functions, the static response function, the kinetic and interaction energies. By reducing the layer spacing we observe a transition from weakly to strongly bound dimer states. The transition is accompanied by the onset of short-range correlations, suppression of the superfluid response, and rotonization of the excitation spectrum. A dispersion law and a dynamic structure factor for the {\em in-phase} (symmetric) and {\em out-of-phase} (antisymmetric) collective modes, during the dimerization, is studied in detail with the stochastic reconstruction method and the method of moments. The antisymmetric mode spectrum is most strongly influenced by suppression of the inlayer…
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