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Electronic Transport in Topological and Strongly Correlated Systems

Electronic Transport in Topological and Strongly Correlated Systems
Author: Aaron Hui
Publisher:
Total Pages: 0
Release: 2021
Genre:
ISBN:

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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.


Electronic Transport Theories

Electronic Transport Theories
Author: Navinder Singh
Publisher: CRC Press
Total Pages: 110
Release: 2016-11-17
Genre: Science
ISBN: 131535196X

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Maintaining a practical perspective, Electronic Transport Theories: From Weakly to Strongly Correlated Materials provides an integrative overview and comprehensive coverage of electronic transport with pedagogy in view. It covers traditional theories, such as the Boltzmann transport equation and the Kubo formula, along with recent theories of transport in strongly correlated materials. The understood case of electronic transport in metals is treated first, and then transport issues in strange metals are reviewed. Topics discussed are: the Drude-Lorentz theory; the traditional Bloch-Boltzmann theory and the Grüneisen formula; the Nyquist theorem and its formulation by Callen and Welton; the Kubo formalism; the Langevin equation approach; the Wölfle-Götze memory function formalism; the Kohn-Luttinger theory of transport; and some recent theories dealing with strange metals. This book is an invaluable resource for undergraduate students, post-graduate students, and researchers with a background in quantum mechanics, statistical mechanics, and mathematical methods.


Two-dimensional Strongly Correlated Electronic Systems

Two-dimensional Strongly Correlated Electronic Systems
Author: China Center of Advanced Science and Technology
Publisher: Routledge
Total Pages: 340
Release: 1989
Genre: Science
ISBN:

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This book addresses present problems and looks towards the future development of new ideas in the field. The series of lectures places emphasis on the theoretical development of high Tc superconducting oxide materials. Contributions include an introduction to strongly correlated systems, the basic concepts of the Mott insulator, the fractional quantum Hall effect and a review of the current thoughts on resonating valence bonds. Research techniques such as variational Monte Carlo methods, mean field theories and topological excitations are also covered. The book will be of general interest and value to graduate students and researchers involved in the study of condensed matter theory.


Charge and Heat Transport in Topological Systems

Charge and Heat Transport in Topological Systems
Author: Flavio Ronetti
Publisher:
Total Pages: 0
Release: 2018
Genre:
ISBN:

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In this thesis, I address the intriguing and appealing topic of charge and heat transport in quantum Hall systems, which are among the most famous example of topological phases of matter, in presence of external time-dependent voltages. Quantum Hall effect occurs in two-dimensional electron systems in the limit of strong perpendicular magnetic fields. The hallmark of quantum Hall systems is the emergence of one-dimensional metallic edge states on the boundary. Along these edge states particles propagate with a definite direction. The coherence length ensured by topological protection guarantees to access wave-like nature of electrons. This properties inspired a new field of research, known as electron quantum optic. Single-electron source can be realized by applying to a quantum Hall system a periodic train of Lorentzian-shaped pulses.Plateaus of the Hall resistance appear also at fractional values of the resistance quantum. The physical explanation of fractional quantum Hall effect cannot neglect the correlation between electrons and this phase of matter is inherently strongly-correlated. By considering the application of a periodic train of Lorentzian pulses to a quantum Hall system, I investigate the charge density of a state composed by many levitons in the fractional quantum Hall regime, thus finding that it is re-arranged into a regular pattern of peaks and valleys, reminiscent of Wigner crystallization in strongly-interacting electronic systems. Then, I analyze heat transport properties of levitons in quantum Hall systems, which represent a new point of view on electron quantum optics, extending and generalizing the results obtained in the charge domain.


Electronic and Magnetic Excitations in Correlated and Topological Materials

Electronic and Magnetic Excitations in Correlated and Topological Materials
Author: John S. Van Dyke
Publisher: Springer
Total Pages: 110
Release: 2018-05-17
Genre: Technology & Engineering
ISBN: 3319899384

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This ​thesis reports a major breakthrough in discovering the superconducting mechanism in CeCoIn5, the “hydrogen atom” among heavy fermion compounds. By developing a novel theoretical formalism, the study described herein succeeded in extracting the crucial missing element of superconducting pairing interaction from scanning tunneling spectroscopy experiments. This breakthrough provides a theoretical explanation for a series of puzzling experimental observations, demonstrating that strong magnetic interactions provide the quantum glue for unconventional superconductivity. Additional insight into the complex properties of strongly correlated and topological materials was provided by investigating their non-equilibrium charge and spin transport properties. The findings demonstrate that the interplay of magnetism and disorder with strong correlations or topology leads to complex and novel behavior that can be exploited to create the next generation of spin electronics and quantum computing devices.


Topology of Strongly Correlated Systems

Topology of Strongly Correlated Systems
Author: Pedro Bicudo
Publisher: World Scientific
Total Pages: 270
Release: 2001
Genre: Science
ISBN: 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).


Electronic Structure of Strongly Correlated Materials

Electronic Structure of Strongly Correlated Materials
Author: Vladimir Anisimov
Publisher:
Total Pages:
Release: 2010
Genre:
ISBN: 9783642048685

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Electronic structure and physical properties of strongly correlated materials containing elements with partially filled 3d, 4d, 4f and 5f electronic shells is analyzed by Dynamical Mean-Field Theory (DMFT). DMFT is the most universal and effective tool used for the theoretical investigation of electronic states with strong correlation effects. In the present book the basics of the method are given and its application to various material classes is shown. The book is aimed at a broad readership: theoretical physicists and experimentalists studying strongly correlated systems. It also serves as a handbook for students and all those who want to be acquainted with fast developing filed of condensed matter physics.


Combined Study of Local Spectroscopy and Macroscopic Electronic Transport of the Correlated Honeycomb Spin-Orbit Mott Insulator Na2IrO3

Combined Study of Local Spectroscopy and Macroscopic Electronic Transport of the Correlated Honeycomb Spin-Orbit Mott Insulator Na2IrO3
Author: Thomas Dziuba
Publisher:
Total Pages:
Release: 2022
Genre:
ISBN:

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The search for novel phenomena that exceeds and interconnects our existing knowledge is at the heart of every scientific effort. Physics, and particularly solid-state research, is no exception. If anything, the technological advancements of the last decades have made the need for new concepts even more apparent. A prototypical example here is the beginning breakdown of Moore's law in the semiconductor industry, where electronic components shrunk down to a few nanometres in size. This greatly enhanced the performance of, e.g., integrated circuits, but leads to a dead end since the further sh...


Open Problems in Strongly Correlated Electron Systems

Open Problems in Strongly Correlated Electron Systems
Author: Janez Bonca
Publisher: Elsevier
Total Pages: 484
Release: 2001-04-30
Genre: Medical
ISBN: 9780792368960

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This book focuses on several major, open questions in the theory of anomalous metals with correlated electrons, complementing theoretical advances with the latest experimental results on related materials, all presented by leaders in the field. The main emphasis is on the physics of cuprates and high temperature superconductors, charge- and spin-ordering and fluctuations, manganites and colossal magnetoresistance, low-dimensional systems and transport, Mott-Hubbard transition and infinite dimensional systems, and the quantum Hall effect.