Topology of Strongly Correlated Systems

Topology of Strongly Correlated Systems PDF

Author: Pedro Bicudo

Publisher: World Scientific

Published: 2001

Total Pages: 270

ISBN-13: 9789810245726

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The XVIII Lisbon Autumn School brought together physicists from different areas, ranging from QCD to condensed matter. This subject will be of ever-growing importance in the coming years. The topics covered are: Anomalies, Physical Charges, Chiral Symmetry, Vortices (Superconductivity, Solitons, Kosterlitz-Thouless Transitions), Non-trivial Topology on the Lattice, Confinement (Wilson Loops and Strings, Instantons, Abelian Higgs Model, Dual QCD).

Studies on Fractionalization and Topology in Strongly Correlated Systems from Zero to Two Dimensions

Studies on Fractionalization and Topology in Strongly Correlated Systems from Zero to Two Dimensions PDF

Author: Yichen Hu

Publisher:

Published: 2019

Total Pages: 354

ISBN-13:

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For the second part, we present a model of interacting Majorana fermions that describes a superconducting phase with a topological order characterized by the Fibonacci topological field theory. Our theory is based on a SO(7)1 = SO(7)1/(G2)1 × (G2)1 coset construction and implemented by a solvable two-dimensional network model. In addition, we predict a closely related ''anti-Fibonacci'' phase, whose topological order is characterized by the tricritical Ising model. Finally, we propose an interferometer that generalizes the Z2 Majorana interferometer and directly probes the Fibonacci non-Abelian statistics.

New Theoretical Approaches to Strongly Correlated Systems

New Theoretical Approaches to Strongly Correlated Systems PDF

Author: Alexei M. Tsvelik

Publisher: Springer Science & Business Media

Published: 2012-12-06

Total Pages: 308

ISBN-13: 9401008388

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For many years, the physics of strongly correlated systems was considered a theorists' playground, right at the border with pure mathematics, where physicists from the `real world' did not venture. The time has come, however, when healthy physics cannot exist without these techniques and results. Lectures on selected topics in the theory of strongly correlated systems are here presented by the leading experts in the field. Topics covered include a use of the form factor approach in low-dimensional systems, applications of quantum field theory to disorder, and dynamical mean field theory. The main divisions of the book deal with: I) Quantum Critical Points; (II) Strongly Correlated One-Dimensional Systems; (III) Strong Correlations and Disorder; and (IV) Dynamical Mean Field Theory.

Entangling Symmetry and Topology in Correlated Electrons

Entangling Symmetry and Topology in Correlated Electrons PDF

Author:

Publisher:

Published: 2015

Total Pages: 224

ISBN-13:

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In this thesis, I study a class of exotic quantum matter named Symmetry-Protected Topological (SPT) phases. These are short-range-entangled quantum phases hosting non-trivial states on their boundaries. In the free-fermion limit, they are famously known as Topological Insulators (TI). Huge progress has been made recently in understanding SPT phases beyond free fermions. Here I will discuss three aspects of SPT phases in interacting systems, mostly in three dimensions: (1) Novel SPT phases could emerge in strongly correlated systems, with no non-interacting counterpart. In particular, I will discuss interaction-enabled electron topological insulators, including their classification, construction, characterization and realization. (2) When strong interactions are present, the surface of many SPT phases (including the familiar free fermion topological insulator) can be gapped without breaking any symmetry, at the expense of having intrinsic topological order on the surface. (3) Some topological phases that are non-trivial in the free fermion theory become trivial once strong interactions are introduced. The material of this thesis closely parallels that of Refs. [1, 2, 3, 4, 5, 6].

Strongly Correlated Fermi Systems

Strongly Correlated Fermi Systems PDF

Author: Miron Amusia

Publisher: Springer Nature

Published: 2020-07-16

Total Pages: 385

ISBN-13: 3030503593

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This book focuses on the topological fermion condensation quantum phase transition (FCQPT), a phenomenon that reveals the complex behavior of all strongly correlated Fermi systems, such as heavy fermion metals, quantum spin liquids, quasicrystals, and two-dimensional systems, considering these as a new state of matter. The book combines theoretical evaluations with arguments based on experimental grounds demonstrating that the entirety of very different strongly correlated Fermi systems demonstrates a universal behavior induced by FCQPT. In contrast to the conventional quantum phase transition, whose physics in the quantum critical region are dominated by thermal or quantum fluctuations and characterized by the absence of quasiparticles, the physics of a Fermi system near FCQPT are controlled by a system of quasiparticles resembling the Landau quasiparticles. The book discusses the modification of strongly correlated systems under the action of FCQPT, representing the “missing” instability, which paves the way for developing an entirely new approach to condensed matter theory; and presents this physics as a new method for studying many-body objects. Based on the authors’ own theoretical investigations, as well as salient theoretical and experimental studies conducted by others, the book is well suited for both students and researchers in the field of condensed matter physics.

Topological Systems Energy and Correlation

Topological Systems Energy and Correlation PDF

Author: Sayan Jana

Publisher:

Published: 2023-04-05

Total Pages: 0

ISBN-13: 9781805270096

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"Topological Systems: Energy and Correlation" is a book that explores the intricate interplay between topology, energy, and correlation in various physical systems, particularly in the realm of quantum matter. The book delves into the fascinating phenomena arising from topological structures and the strong correlations among their constituent particles, such as zero-energy modes, non-trivial topology, and emergent excitations. It discusses the theoretical framework and experimental observations of topological phases of matter, such as topological insulators, superconductors, and semimetals, that exhibit robust and quantized electronic properties that are protected by symmetries and topology. The book is aimed at graduate students and researchers in condensed matter physics, materials science, and related fields who are interested in understanding the fundamental principles and exciting applications of topological systems.

Electronic Transport in Topological and Strongly Correlated Systems

Electronic Transport in Topological and Strongly Correlated Systems PDF

Author: Aaron Hui

Publisher:

Published: 2021

Total Pages: 0

ISBN-13:

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In this dissertation, we attack the problem of strongly correlated and topological systems via a creative variety of approaches in the hopes of extracting and elucidating meaningful electronic transport phenomena. In the first part, we study the long-standing puzzle of the anomalously large and superuniversal correlation length exponent $\nu$ in the fractional quantum Hall effect. To tackle this, we utilize the newly conjectured Chern-Simons dualities as a powerful non-perturbative tool. By exploring the new descriptions of FQHE transitions afforded by the dualities, we find that large flavor expansions compare unfavorably to the experimental $\nu$. However, the non-Abelian nature of these dualities motivated us to try large color expansions. Utilizing duality techniques in combination with modular transformations, we were able to use large color expansions to demonstrate superuniversality across FQHE transitions. This was the first theoretical demonstration of superuniversality, as well as one of the first uses of the non-Abelian Chern-Simons dualities. In the second part, we critically examine transport features of the strongly-correlated electron hydrodynamic regime. Electron hydrodynamics has been claimed to be observed in a number of experiments, generating much excitement. However, clear demonstration of this regime is tricky since direct measurement of the electron-electron scattering length is difficult. Measurements of non-local transport behavior have been argued to be a signature of viscous flow and therefore provide indirect evidence of a short electron-electron scattering length. We begin by showing, on the contrary, that non-local transport behavior can occur even for disordered non-interacting fermionic systems which sits far from the hydrodynamic regime. Therefore, non-local transport is not unique to hydrodynamics. Furthermore, the linearized Navier-Stokes equation is structurally equivalent to common momentum-dependent Ohm's law; disentangling the hydrodynamic contribution requires precise understanding of the phenomenological parameters. By contrast, the fully nonlinear Navier-Stokes equation is distinct from the linear Ohm's law and can give rise to distinctive signatures. We therefore proposed three experiments to manifest unique nonlinear phenomena well-known in the classical fluids literature - the Bernoulli effect, Eckart streaming, and Rayleigh streaming. Analysis of experimental parameters suggests that these proposals are feasible and therefore provide strong signatures of a hydrodynamic regime. Moreover, as one of the first works to comprehensively study nonlinear effects, we hope that it would motivate further exploration of nonlinear electron fluid dynamics. In the third part, we look for optical signatures of the chiral anomaly in Weyl semimetals. Direct detection of the chiral anomaly via a negative longitudinal magnetoresistance has been difficult as this signature can arise from other mechanisms. Other works have proposed anomalous IR reflectance signatures as a smoking gun for the chiral anomaly in non-mirror-symmetric Weyl semimetals. However, they neglected that the presence of a magnetic field, necessary for the chiral anomaly, will generically break mirror symmetries. We go on to argue that the background magnetic field can break mirror symmetry strongly enough in physical systems to yield observable IR signatures of the chiral anomaly, even for mirror-symmetric crystals. In the fourth part, we study transport along topological domain wall networks in moir\'e systems. While most excitement around moir\'e physics have focused around the moir\'e miniband, recent experiments have suggest that moir\'e systems can also feature sharp domain walls and provide a natural setting to study networks of 1D topological modes. Previous works focused either on non-interacting models or utilized interacting models to find gapped correlated phases by imposing a single-particle gap. However, away from commensurate fillings we expect intervalley scattering to be suppressed so that a single-particle gap cannot open. Therefore, we study a triangular network of valley-helical Luttinger wires where we enforce no intervalley scattering. We find that transport in this network is inherently non-local, distinct from the local diffusive behavior of a resistor network. In particular, at strong repulsive interactions we predict a novel orbital antiferromagnetic-ordering phase.

Topology And Physics

Topology And Physics PDF

Author: Chen Ning Yang

Publisher: World Scientific

Published: 2019-01-09

Total Pages: 231

ISBN-13: 9813278684

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'The book is an engaging and influential collection of significant contributions from an assembly of world expert leaders and pioneers from different fields, working at the interface between topology and physics or applications of topology to physical systems … The book explores many interesting and novel topics that lie at the intersection between gravity, quantum fields, condensed matter, physical cosmology and topology … A rich, well-organized, and comprehensive overview of remarkable and insightful connections between physics and topology is here made available to the physics reader.'Contemporary PhysicsSince its birth in Poincaré's seminal 1894 'Analysis Situs', topology has become a cornerstone of mathematics. As with all beautiful mathematical concepts, topology inevitably — resonating with that Wignerian principle of the effectiveness of mathematics in the natural sciences — finds its prominent role in physics. From Chern-Simons theory to topological quantum field theory, from knot invariants to Calabi-Yau compactification in string theory, from spacetime topology in cosmology to the recent Nobel Prize winning work on topological insulators, the interactions between topology and physics have been a triumph over the past few decades.In this eponymous volume, we are honoured to have contributions from an assembly of grand masters of the field, guiding us with their world-renowned expertise on the subject of the interplay between 'Topology' and 'Physics'. Beginning with a preface by Chen Ning Yang on his recollections of the early days, we proceed to a novel view of nuclei from the perspective of complex geometry by Sir Michael Atiyah and Nick Manton, followed by an entrée toward recent developments in two-dimensional gravity and intersection theory on the moduli space of Riemann surfaces by Robbert Dijkgraaf and Edward Witten; a study of Majorana fermions and relations to the Braid group by Louis H Kauffman; a pioneering investigation on arithmetic gauge theory by Minhyong Kim; an anecdote-enriched review of singularity theorems in black-hole physics by Sir Roger Penrose; an adventure beyond anyons by Zhenghan Wang; an aperçu on topological insulators from first-principle calculations by Haijun Zhang and Shou-Cheng Zhang; finishing with synopsis on quantum information theory as one of the four revolutions in physics and the second quantum revolution by Xiao-Gang Wen. We hope that this book will serve to inspire the research community.

Topology in Condensed Matter

Topology in Condensed Matter PDF

Author: Michael I. Monastyrsky

Publisher: Springer Science & Business Media

Published: 2006-02-04

Total Pages: 263

ISBN-13: 3540312641

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This book reports new results in condensed matter physics for which topological methods and ideas are important. It considers, on the one hand, recently discovered systems such as carbon nanocrystals and, on the other hand, new topological methods used to describe more traditional systems such as the Fermi surfaces of normal metals, liquid crystals and quasicrystals. The authors of the book are renowned specialists in their fields and present the results of ongoing research, some of it obtained only very recently and not yet published in monograph form.