Fr. 135.00

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

English · Paperback / Softback

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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.

List of contents

Introduction.- Variational Study of the Square Lattice Anti-ferromagnet Magnetic Zone-Boundary Anomaly.- Modeling the Spin-Wave Dispersion of Insulating Cuprate Materials.

About the author

After
a brief excursion into literature studies at the University of Lausanne, Bastien
Dalla Piazza began his physics studies at the École Polytechnique Fédérale de
Lausanne (EPFL) where he obtained his master’s degree and later his Physics
PhD, having worked on exotic properties of some magnetic materials using
massively parallel supercomputers. Following his PhD, he joined Nanolive SA, a
start-up developing the first commercial implementation of a tomographic phase
microscope.

Summary

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.

Product details

Authors Bastien Dalla Piazza
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 01.01.2018
 
EAN 9783319799513
ISBN 978-3-31-979951-3
No. of pages 176
Dimensions 157 mm x 235 mm x 10 mm
Weight 308 g
Illustrations XVII, 176 p. 71 illus., 57 illus. in color.
Series Springer Theses
Springer Theses
Subjects Natural sciences, medicine, IT, technology > Physics, astronomy > Atomic physics, nuclear physics

B, Optical and Electronic Materials, Quantum Physics, Quantum physics (quantum mechanics & quantum field theory), Physics and Astronomy, Electronic materials, Electronic devices & materials, Optical Materials, Magnetism, Magnetic materials, Magnetism, Magnetic Materials, Quantum computers, Spintronics, Quantum Information Technology, Spintronics

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