Quantum Monte Carlo studies of impurities in Bose gases at finite temperature and in the Fermi-hubbard model

(English) This Thesis explores the behavior of impurities embedded in Bose and Fermi systems, addressing both ground-state properties and thermal effects. We investigate these phenomena through advanced computational methods, such as Path Integral Monte Carlo (PIMC) and determinant diagrammatic Mont...

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Bibliographic Details
Author: Pascual López, Gerard
Format: doctoral thesis
Status:Published version
Publication Date:2025
Country:España
Institution:CBUC, CESCA
Repository:TDR. Tesis Doctorales en Red
OAI Identifier:oai:www.tdx.cat:10803/694342
Online Access:http://hdl.handle.net/10803/694342
https://dx.doi.org/10.5821/dissertation-2117-428682
Access Level:Open access
Keyword:Polarons
Path Integral Monte Carlo method
Fermi Hubbard model
Diagrammatic Monte Carlo method
Àrees temàtiques de la UPC::Física
53 - Física
Description
Summary:(English) This Thesis explores the behavior of impurities embedded in Bose and Fermi systems, addressing both ground-state properties and thermal effects. We investigate these phenomena through advanced computational methods, such as Path Integral Monte Carlo (PIMC) and determinant diagrammatic Monte Carlo algorithms, providing insights into the interplay between impurity dynamics and many-body quantum effects. First, we examine the Bose polaron, i.e., an impurity in a Bose bath, focusing on its behavior near the critical temperature. Using ab-initio PIMC simulations, we study the temperature dependence of the polaron energy, effective mass, and dynamic structure factor for both repulsive and attractive branches. Our results show that quasiparticle characteristics are lost near the critical temperature, consistent with experimental findings. Additionally, we analyze the impact of impurities on the Bose-Einstein condensation and superfluidity of the Bose bath. Next, we address the thermal properties of repulsive impurities in a harmonically trapped Bose gas. At low temperatures, strong impurity-boson repulsion expels the impurity to the trap edges, but increasing temperature induces a miscibility crossover, with the impurity moving to the center of the trap. We identify a temperature-dependent miscibility transition and propose a nondestructive method for temperature measurement based on this phenomenon. We then study two-component repulsive Bose mixtures in a finite box. Our PIMC simulations reveal two distinct thermal behaviors: for phase-separated states at zero temperature, thermal diffusion reduces local population imbalance, while for miscible states, a temperature-induced maximum in local imbalance emerges due to particle bunching and anomalous cross pair distribution behavior. Finally, we analyze a two-dimensional Fermi gas on a lattice with a spin-down impurity interacting attractively with spin-up fermions. Using variational and diagrammatic Monte Carlo methods, we investigate the possibility of a polaron-to-dimeron transition over a range of filling fractions. Our results show that the polaron state remains energetically favorable, maintaining finite quasiparticle residue even at strong interactions. Together, these studies deepen our understanding of impurity physics in quantum systems, shedding light on thermal effects, miscibility, and quasiparticle properties in diverse scenarios.