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Electromagnetically induced transparency : Optics in coherent media

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TLDR
In this paper, the authors consider the atomic dynamics and the optical response of the medium to a continuous-wave laser and show how coherently prepared media can be used to improve frequency conversion in nonlinear optical mixing experiments.
Abstract
Coherent preparation by laser light of quantum states of atoms and molecules can lead to quantum interference in the amplitudes of optical transitions. In this way the optical properties of a medium can be dramatically modified, leading to electromagnetically induced transparency and related effects, which have placed gas-phase systems at the center of recent advances in the development of media with radically new optical properties. This article reviews these advances and the new possibilities they offer for nonlinear optics and quantum information science. As a basis for the theory of electromagnetically induced transparency the authors consider the atomic dynamics and the optical response of the medium to a continuous-wave laser. They then discuss pulse propagation and the adiabatic evolution of field-coupled states and show how coherently prepared media can be used to improve frequency conversion in nonlinear optical mixing experiments. The extension of these concepts to very weak optical fields in the few-photon limit is then examined. The review concludes with a discussion of future prospects and potential new applications.

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Journal ArticleDOI

Classical analog of electromagnetically induced absorption in plasmonics

TL;DR: In this article, the authors present the classical analog of electromagnetically induced absorption which is achieved by tuning the coupling phase between a bright and a dark plasmonic resonance in the intermediate regime and thus obtaining constructive interference.
Journal ArticleDOI

Enhanced sensing performance by the plasmonic analog of electromagnetically induced transparency in active metamaterials

TL;DR: In this paper, the gain-assisted plasmonic analog of electromagnetically induced transparency (EIT) in a metallic metamaterial was investigated for the purpose to enhance the sensing performance of the EIT-like PLASmonic structure.
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Photon scattering by a three-level emitter in a one-dimensional waveguide

TL;DR: In this article, the authors discuss the scattering of photons from a three-level emitter in a one-dimensional waveguide, where the transport is governed by the interference of spontaneously emitted and directly transmitted waves.
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Quantum-dot-induced transparency in a nanoscale plasmonic resonator.

TL;DR: This work investigates the near-field optical coupling between a single semiconductor nanocrystal (quantum dot) and a nanometer-scale plasmonic metal resonator using rigorous electrodynamic simulations, revealing the roles of Fano interference and hybridization.
Journal ArticleDOI

Photon storage in Lambda-type optically dense atomic media. I. Cavity model

TL;DR: Gorshkov et al. as discussed by the authors used a universal physical picture to optimize and demonstrate equivalence between a wide range of techniques for storage and retrieval of photon wave packets in free space, including the adiabatic reduction of the photon group velocity, pulse propagation control via off-resonant Raman techniques, and photon-echo-based techniques.
References
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Book

Quantum Computation and Quantum Information

TL;DR: In this article, the quantum Fourier transform and its application in quantum information theory is discussed, and distance measures for quantum information are defined. And quantum error-correction and entropy and information are discussed.

Quantum Computation and Quantum Information

TL;DR: This chapter discusses quantum information theory, public-key cryptography and the RSA cryptosystem, and the proof of Lieb's theorem.
Journal ArticleDOI

Spintronics: a spin-based electronics vision for the future.

TL;DR: This review describes a new paradigm of electronics based on the spin degree of freedom of the electron, which has the potential advantages of nonvolatility, increased data processing speed, decreased electric power consumption, and increased integration densities compared with conventional semiconductor devices.
Journal ArticleDOI

Spintronics: Fundamentals and applications

TL;DR: Spintronics, or spin electronics, involves the study of active control and manipulation of spin degrees of freedom in solid-state systems as discussed by the authors, where the primary focus is on the basic physical principles underlying the generation of carrier spin polarization, spin dynamics, and spin-polarized transport.
Journal ArticleDOI

Effects of Configuration Interaction on Intensities and Phase Shifts

TL;DR: In this paper, a theoretical analysis of the shape of the 2s2p^{1}P resonance of He observed in the inelastic scattering of electrons is presented. But the analysis is restricted to the case of one discrete level with two or more continua and of a set of discrete levels with one continuum.
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