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Open AccessJournal ArticleDOI

Operational Resource Theory of Coherence.

TLDR
An operational theory of coherence (or of superposition) in quantum systems is established, by focusing on the optimal rate of performance of certain tasks, by demonstrating that the coherence theory is generically an irreversible theory by a simple criterion that completely characterizes all reversible states.
Abstract
We establish an operational theory of coherence (or of superposition) in quantum systems, by focusing on the optimal rate of performance of certain tasks. Namely, we introduce the two basic concepts-"coherence distillation" and "coherence cost"-in the processing quantum states under so-called incoherent operations [Baumgratz, Cramer, and Plenio, Phys. Rev. Lett. 113, 140401 (2014)]. We, then, show that, in the asymptotic limit of many copies of a state, both are given by simple single-letter formulas: the distillable coherence is given by the relative entropy of coherence (in other words, we give the relative entropy of coherence its operational interpretation), and the coherence cost by the coherence of formation, which is an optimization over convex decompositions of the state. An immediate corollary is that there exists no bound coherent state in the sense that one would need to consume coherence to create the state, but no coherence could be distilled from it. Further, we demonstrate that the coherence theory is generically an irreversible theory by a simple criterion that completely characterizes all reversible states.

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Journal ArticleDOI

Quantum coherence and the localization transition

TL;DR: In this paper, the authors study the localization transition via quantum coherence measures arising from the resource theory of coherence, and show that the escape probability, which is known to show distinct behavior in the ergodic and localized phases, arises naturally as the average of a coherence measure.
Journal ArticleDOI

Experimental demonstration of wave-particle duality relation based on coherence measure

TL;DR: In this article, a new measure of wave-particle duality based on two kinds of coherence measures quantitatively for the first time is presented. But the measure is not suitable for the measurement of quantum coherence and path information.
Journal ArticleDOI

Validating and controlling quantum enhancement against noise by the motion of a qubit

TL;DR: In this paper, the authors consider a traveling atom qubit as a quantum memory with adjustable velocity inside a leaky cavity, adopting a quantum witness as a figure of merit for quantumness assessment.
Journal ArticleDOI

Assisted Work Distillation

TL;DR: It is shown that the advantage of one party performing global measurements over many copies of ρ_{AB} is related to the nonadditivity of the entanglement of formation, and there may exist work bound in the quantum correlations of the state that is only extractable under the wider class of local Gibbs-preserving operations.
Journal ArticleDOI

Characterizing quantum networks: Insights from coherence theory

TL;DR: It is demonstrated that a recently proposed approach to network correlations based on covariance matrices can be improved and analytically evaluated for the most important cases.
References
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Elements of information theory

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Entanglement of Formation of an Arbitrary State of Two Qubits

TL;DR: In this article, an explicit formula for the entanglement of formation of a pair of binary quantum objects (qubits) as a function of their density matrix was conjectured.
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Quantum entanglement

TL;DR: In this article, the basic aspects of entanglement including its characterization, detection, distillation, and quantification are discussed, and a basic role of entonglement in quantum communication within distant labs paradigm is discussed.
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Inequalities: Theory of Majorization and Its Applications

TL;DR: In this paper, Doubly Stochastic Matrices and Schur-Convex Functions are used to represent matrix functions in the context of matrix factorizations, compounds, direct products and M-matrices.
Journal ArticleDOI

Quantifying Coherence

TL;DR: In this article, a rigorous framework for quantification of coherence and identification of intuitive and easily computable measures for coherence has been proposed by adopting coherence as a physical resource.
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