LEADER 03615nam 22005175 450 001 9910300531803321 005 20200705032631.0 010 $a3-319-93964-5 024 7 $a10.1007/978-3-319-93964-3 035 $a(CKB)3850000000036145 035 $a(MiAaPQ)EBC5448097 035 $a(DE-He213)978-3-319-93964-3 035 $a(PPN)229503527 035 $a(EXLCZ)993850000000036145 100 $a20180704d2018 u| 0 101 0 $aeng 135 $aurcnu|||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aThermodynamics and Synchronization in Open Quantum Systems /$fby Gonzalo Manzano Paule 205 $a1st ed. 2018. 210 1$aCham :$cSpringer International Publishing :$cImprint: Springer,$d2018. 215 $a1 online resource (424 pages) 225 1 $aSpringer Theses, Recognizing Outstanding Ph.D. Research,$x2190-5053 311 $a3-319-93963-7 327 $aPart 1: Introduction to Open Quantum Systems and Quantum Thermodynamics -- Basic Concepts -- Open Quantum System Dynamics -- Quantum Thermodynamics -- Part 2: Quantum Synchronization Induced by Dissipation in Many-Body Systems -- Transient Synchronization and Quantum Correlations -- Noiseless Subsystems and Synchronization -- Dissipative Complex Quantum Networks -- Part 3: Quantum Fluctuation Theorems and Entropy Production -- Fluctuation Theorems for Quantum Maps -- Entropy Production Fluctuations in Quantum Process -- Simple Applications of the Entropy Production FT?s -- Part 4: Quantum Thermal Machines -- Thermodynamic Power of the Squeezed Thermal Reservoir.-Performance of Autonomous Quantum Thermal Machines -- Part 5: Conclusions -- Summary and Outlook. 330 $aThis book explores some of the connections between dissipative and quantum effects from a theoretical point of view. It focuses on three main topics: the relation between synchronization and quantum correlations, the thermodynamical properties of fluctuations, and the performance of quantum thermal machines. Dissipation effects have a profound impact on the behavior and properties of quantum systems, and the unavoidable interaction with the surrounding environment, with which systems continuously exchange information, energy, angular momentum and matter, is ultimately responsible for decoherence phenomena and the emergence of classical behavior. However, there is a wide intermediate regime in which the interplay between dissipative and quantum effects gives rise to a plethora of rich and striking phenomena that has just started to be understood. In addition, the recent breakthrough techniques in controlling and manipulating quantum systems in the laboratory have made this phenomenology accessible in experiments and potentially applicable. 410 0$aSpringer Theses, Recognizing Outstanding Ph.D. Research,$x2190-5053 606 $aThermodynamics 606 $aQuantum theory 606 $aThermodynamics$3https://scigraph.springernature.com/ontologies/product-market-codes/P21050 606 $aQuantum Physics$3https://scigraph.springernature.com/ontologies/product-market-codes/P19080 615 0$aThermodynamics. 615 0$aQuantum theory. 615 14$aThermodynamics. 615 24$aQuantum Physics. 676 $a530.12011 700 $aManzano Paule$b Gonzalo$4aut$4http://id.loc.gov/vocabulary/relators/aut$0835587 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910300531803321 996 $aThermodynamics and Synchronization in Open Quantum Systems$91867709 997 $aUNINA