Coherent Spins in Few Electron Si/SiGe Quantum Dots

Coherent Spins in Few Electron Si/SiGe Quantum Dots
Title Coherent Spins in Few Electron Si/SiGe Quantum Dots PDF eBook
Author Nakul Shaji
Publisher
Pages 198
Release 2007
Genre
ISBN

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Electron Spin Resonance and Related Phenomena in Low-Dimensional Structures

Electron Spin Resonance and Related Phenomena in Low-Dimensional Structures
Title Electron Spin Resonance and Related Phenomena in Low-Dimensional Structures PDF eBook
Author Marco Fanciulli
Publisher Springer Science & Business Media
Pages 272
Release 2009-08-24
Genre Science
ISBN 3540793658

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Here is a discussion of the state of the art of spin resonance in low dimensional structures, such as two-dimensional electron systems, quantum wires, and quantum dots. Leading scientists report on recent advances and discuss open issues and perspectives.

Mesoscopic Electron Transport

Mesoscopic Electron Transport
Title Mesoscopic Electron Transport PDF eBook
Author Lydia L. Sohn
Publisher Springer Science & Business Media
Pages 680
Release 2013-06-29
Genre Science
ISBN 9401588392

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Ongoing developments in nanofabrication technology and the availability of novel materials have led to the emergence and evolution of new topics for mesoscopic research, including scanning-tunnelling microscopic studies of few-atom metallic clusters, discrete energy level spectroscopy, the prediction of Kondo-type physics in the transport properties of quantum dots, time dependent effects, and the properties of interacting systems, e.g. of Luttinger liquids. The overall understanding of each of these areas is still incomplete; nevertheless, with the foundations laid by studies in the more traditional systems there is no doubt that these new areas will advance mesoscopic electron transport to a new phenomenological level, both experimentally and theoretically. Mesoscopic Electron Transport highlights selected areas in the field, provides a comprehensive review of such systems, and also serves as an introduction to the new and developing areas of mesoscopic electron transport.

Electron and Nuclear Spin Dynamics in Semiconductor Nanostructures

Electron and Nuclear Spin Dynamics in Semiconductor Nanostructures
Title Electron and Nuclear Spin Dynamics in Semiconductor Nanostructures PDF eBook
Author M. M. Glazov
Publisher
Pages 294
Release 2018
Genre Science
ISBN 0198807309

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This book focuses on the main aspects of electron and nuclear spin dynamics in semiconductor nanostructures. It summarizes main results of theoretical and experimental studies of interactions in spin systems, effects of ultrafast spin manipulation by light, phenomena of spin losses, and the physics of the omnipresent spin noise.

Semiconductor Spintronics and Quantum Computation

Semiconductor Spintronics and Quantum Computation
Title Semiconductor Spintronics and Quantum Computation PDF eBook
Author D.D. Awschalom
Publisher Springer Science & Business Media
Pages 321
Release 2013-04-17
Genre Technology & Engineering
ISBN 366205003X

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The past few decades of research and development in solid-state semicon ductor physics and electronics have witnessed a rapid growth in the drive to exploit quantum mechanics in the design and function of semiconductor devices. This has been fueled for instance by the remarkable advances in our ability to fabricate nanostructures such as quantum wells, quantum wires and quantum dots. Despite this contemporary focus on semiconductor "quantum devices," a principal quantum mechanical aspect of the electron - its spin has it accounts for an added quan largely been ignored (except in as much as tum mechanical degeneracy). In recent years, however, a new paradigm of electronics based on the spin degree of freedom of the electron has begun to emerge. This field of semiconductor "spintronics" (spin transport electron ics or spin-based electronics) places electron spin rather than charge at the very center of interest. The underlying basis for this new electronics is the intimate connection between the charge and spin degrees of freedom of the electron via the Pauli principle. A crucial implication of this relationship is that spin effects can often be accessed through the orbital properties of the electron in the solid state. Examples for this are optical measurements of the spin state based on the Faraday effect and spin-dependent transport measure ments such as giant magneto-resistance (GMR). In this manner, information can be encoded in not only the electron's charge but also in its spin state, i. e.

Spin-orbit Coupling Effects in Two-Dimensional Electron and Hole Systems

Spin-orbit Coupling Effects in Two-Dimensional Electron and Hole Systems
Title Spin-orbit Coupling Effects in Two-Dimensional Electron and Hole Systems PDF eBook
Author Roland Winkler
Publisher Springer Science & Business Media
Pages 244
Release 2003-10-10
Genre Technology & Engineering
ISBN 9783540011873

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The first part provides a general introduction to the electronic structure of quasi-two-dimensional systems with a particular focus on group-theoretical methods. The main part of the monograph is devoted to spin-orbit coupling phenomena at zero and nonzero magnetic fields. Throughout the book, the main focus is on a thorough discussion of the physical ideas and a detailed interpretation of the results. Accurate numerical calculations are complemented by simple and transparent analytical models that capture the important physics.

Towards Solid-State Quantum Repeaters

Towards Solid-State Quantum Repeaters
Title Towards Solid-State Quantum Repeaters PDF eBook
Author Kristiaan De Greve
Publisher Springer Science & Business Media
Pages 159
Release 2013-04-16
Genre Computers
ISBN 3319000748

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Towards Solid-State Quantum Repeaters: Ultrafast, Coherent Optical Control and Spin-Photon Entanglement in Charged InAs Quantum Dots summarizes several state-of-the-art coherent spin manipulation experiments in III-V quantum dots. Both high-fidelity optical manipulation, decoherence due to nuclear spins and the spin coherence extraction are discussed, as is the generation of entanglement between a single spin qubit and a photonic qubit. The experimental results are analyzed and discussed in the context of future quantum technologies, such as quantum repeaters. Single spins in optically active semiconductor host materials have emerged as leading candidates for quantum information processing (QIP). The quantum nature of the spin allows for encoding of stationary, memory quantum bits (qubits), and the relatively weak interaction with the host material preserves the spin coherence. On the other hand, optically active host materials permit direct interfacing with light, which can be used for all-optical qubit manipulation, and for efficiently mapping matter qubits into photonic qubits that are suited for long-distance quantum communication.