Two-dimensional and novel quasi-two-dimensional quantum liquids
Marco Nava

TL;DR
This thesis uses Quantum Monte Carlo methods to study two-dimensional helium systems, revealing new physical phenomena and providing ab-initio insights into their static and dynamic properties, including superfluidity and phase stability.
Contribution
It presents the first ab-initio evaluation of the zero-sound mode and dynamic structure factor of 2D-3He, and investigates the phase behavior and superfluidity of 4He on graphene-based substrates.
Findings
Good agreement of spin susceptibility with experiments
First ab-initio calculation of zero-sound mode and dynamic structure factor for 2D-3He
Identification of superfluid and stable phases of 4He on GF and GH
Abstract
In this thesis we have used Quantum Monte Carlo techniques to study two systems that can be regarded as the archetype for neutral strongly interacting systems: 4He, and its fermionic counterpart 3He.More specifically, we have used the Path Integral Ground State and the Path Integral Monte Carlo methods to study a system of two dimensional 3He (2d-3He) and a system of 4He adsorbed on Graphene-Fluoride (GF) and Graphane (GH) at both zero and finite temperature. The purpose of the study of 4He on GF (GH) was the research of new physical phenomena, whereas in the case of 2d-3He it was the application of novel methodologies for the ab-initio study of static and dynamic properties of Fermi systems. In the case of 2d-3He we have computed the spin susceptibility as function of density which turned out to be in very good agreement with experimental data; we have also obtained the first ab-initio…
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Taxonomy
TopicsRandom Matrices and Applications · Algebraic structures and combinatorial models · Advanced Topics in Algebra
