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        Gauge/String Duality, Hot QCD and Heavy Ion Collisions

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        Author(s)
        Casalderrey-Solana, Jorge
        Liu, Hong
        Mateos, David
        Rajagopal, Krishna
        Achim Wiedemann, Urs
        Collection
        SCOAP3 for Books
        Language
        English
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        Abstract
        Heavy ion collision experiments recreating the quark-gluon plasma that filled the nascent universe have established that it is a nearly perfect liquid that flows with such minimal dissipation that it cannot be seen as made of particles. String theory provides a powerful toolbox for studying matter with such properties. This book provides a comprehensive introduction to gauge/string duality and its applications to the study of the thermal and transport properties of quark-gluon plasma, the dynamics of how it forms, how it flows, and its response to probes including jets and quarkonium mesons. Calculations are discussed in the context of data from RHIC and LHC and results from finite temperature lattice QCD. This is an ideal reference for students and researchers in string theory, quantum field theory, quantum many-body physics, heavy ion physics and lattice QCD.
        URI
        https://library.oapen.org/handle/20.500.12657/64005
        Keywords
        heavy ions; lattice QCD; gauge/string duality; strongly coupled plasma; hydrodynamics; far-from-equilibrium dynamics; quarkonium mesons
        DOI
        10.1017/9781009403504
        ISBN
        9781009403504, 9781009403504
        Publisher
        Cambridge University Press
        Publication date and place
        2014
        Grantor
        • SCOAP3 - [...]
        Classification
        Nuclear physics
        Rights
        https://creativecommons.org/licenses/by-nc-nd/4.0/
        • Imported or submitted locally

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        License

        • If not noted otherwise all contents are available under Attribution 4.0 International (CC BY 4.0)

        Credits

        • logo EU
        • This project received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement No 683680, 810640, 871069 and 964352.

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