Intrinsic relationships of Quantum Resource Theories and their roles in Quantum Metrology
Abdallah Slaoui

TL;DR
This paper explores the intrinsic links between quantum resource theories like entanglement and coherence, and their applications in quantum metrology, highlighting how quantum correlations enhance measurement precision and how these resources evolve in open systems.
Contribution
It provides a detailed analysis of the mathematical tools for quantifying quantum resources, their interrelations, and their role in improving quantum metrology beyond entanglement.
Findings
Quantum discord can be used to improve phase estimation accuracy.
Quantum Fisher information captures correlations that enhance measurement precision.
Environmental effects on quantum resources are characterized and mitigation strategies are discussed.
Abstract
Quantum resource theories allow us to quantify a useful quantum phenomenon, to develop new protocols for its detection and determine the exact processes that maximize its use for practical tasks. These theories aim at transforming physical phenomena, such as entanglement and quantum coherence, into useful properties for the execution of concrete tasks related to quantum information. In this thesis, we focus on the resource theories of entanglement, discord-like quantum correlations, and quantum coherence, the most intriguing quantum phenomena exploited so far in quantum information theory. We begin by presenting in detail the theoretical tools of these quantum resources, focusing on the most remarkable techniques and computational problems. In this sense, we discuss several mathematical methods that solve some problems related to their quantifications, and some analytical results for…
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Taxonomy
TopicsQuantum Information and Cryptography
