Excitation spectrum in two-dimensional superfluid 4He
F. Arrigoni, E. Vitali, D. E. Galli, L. Reatto

TL;DR
This study uses ab-initio Monte Carlo methods to analyze the excitation spectrum of two-dimensional superfluid helium-4 across various densities, revealing how the phonon-roton spectrum evolves and connecting results with experimental neutron scattering data.
Contribution
It provides a detailed microscopic analysis of the excitation spectrum in 2D superfluid helium-4 using advanced Monte Carlo techniques and inverse methods, which was not previously achieved.
Findings
The dispersion relation transitions from anomalous to normal with increasing density.
The maxon-roton structure becomes more pronounced at higher densities.
The roton wave vector shows strong density dependence.
Abstract
In this work we perform an ab-initio study of an ideal two-dimensional sample of 4He atoms, a model for 4He films adsorbed on several kinds of substrates. Starting from a realistic hamiltonian we face the microscopic study of the excitation phonon-roton spectrum of the system at zero temperature. Our approach relies on Path Integral Ground State Monte Carlo projection methods, allowing to evaluate exactly the dynamical density correlation functions in imaginary time, and this gives access to the dynamical structure factor of the system S(q,omega), containing information about the excitation spectrum E(q), resulting in sharp peaks in S(q,omega). The actual evaluation of S(q,omega) requires the inversion of the Laplace transform in ill-posed conditions, which we face via the Genetic Inversion via Falsification of Theories technique. We explore the full density range from the region of…
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