Excitation Spectra of Square Lattice Antiferromagnets: Theoretical Explanation of Experimental Observations

This document was uploaded by one of our users. The uploader already confirmed that they had the permission to publish it. If you are author/publisher or own the copyright of this documents, please report to us by using this DMCA report form.

Simply click on the Download Book button.

Yes, Book downloads on Ebookily are 100% Free.

Sometimes the book is free on Amazon As well, so go ahead and hit "Search on Amazon"

This thesis presents a qualitative advance in our understanding of quantum effects in layered magnetic materials. The nearest neighbor Heisenberg ferromagnetic ranks among the oldest and most fundamental models of quantum many body effects. It has long been established that in one dimension quantum fluctuations lead to a quantum disordered ground state with fractional excitations called spinons." In two dimensions, the ground state of the Heisenberg model displays static order and to first approximation the dynamics can be described as semi-classical spin waves. Through theoretical advances the author demonstrates that at high energy around particular points in reciprocal space these semi-classical spin-waves deconfine into fractional excitations akin to the one-dimensional spinons. He thereby provides the first explanation of a long-standing experimental observation.

In the second half of his thesis Bastien Dalla Piazza develops a unified description of the magnetic excitation spectra of a range of cuprate parent compounds to the high temperature superconductors.

Author(s): Bastien Dalla Piazza (auth.)
Series: Springer Theses
Edition: 1
Publisher: Springer International Publishing
Year: 2016

Language: English
Pages: XVII, 176
Tags: Magnetism, Magnetic Materials; Quantum Information Technology, Spintronics; Quantum Physics; Optical and Electronic Materials

Front Matter....Pages i-xvii
Variational Study of the Square Lattice Antiferromagnet Magnetic Zone-Boundary Anomaly....Pages 1-87
Modeling the Spin-Wave Dispersion of Insulating Cuprate Materials....Pages 89-150
Back Matter....Pages 151-176