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Thermodynamics originated in the need to understand novel technologies developed by the Industrial Revolution.
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J. A. Franco-Villafañe, E. Sadurní, S. Barkhofen, U. Kuhl, F. Mortessagne, and T. H. Seligman, “First experimental realization of the Dirac oscillator,” Phys. Rev. Lett. 111
2013
Cited alongside, same era.
S. Deffner, “Information-driven current in a quantum Maxwell demon,” Phys. Rev. E 88
2013
Cited alongside, same era.
O. Abah and E. Lutz, “Efficiency of heat engines coupled to nonequilibrium reservoirs,” EPL (Europhysics Letters) 106
2014
Cited alongside, same era.
L. A. Correa, J. Palao, D. Alonso, and G. Adesso, “Quantum-enhanced absorption refrigerators,” Sci. Rep. 4
2014
Cited alongside, same era.
R. Kosloff and A. Levy, “Quantum heat engines and refrigerators: Continuous devices,” Ann. Rev. Phys. Chem. 65
2014
Cited alongside, same era.
J. Roßnagel, O. Abah, F. Schmidt-Kaler, K. Singer, and E. Lutz, “Nanoscale heat engine beyond the Carnot limit,” Phys. Rev. Lett. 112
2014
Cited alongside, same era.
F. Altintas, A. U. C. Hardal, and O. E. Müstecaplioglu, “Quantum correlated heat engine with spin squeezing,” Phys. Rev. E 90
2014
Cited alongside, same era.
G. Engelhardt and G. Schaller, “Maxwell’s demon in the quantum-zeno regime and beyond,” New J. Phys. 20
2018
Later among the works it cites.
M. G. Raymer and C. Monroe, “The US national quantum initiative,” Quantum Sci. Technol. 4
2019
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M. Riedel, M. Kovacs, P. Zoller, J. Mlynek, and T. Calarco, “Europe’s quantum flagship initiative,” Quantum Sci. Technol. 4
2019
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Y. Yamamoto, M. Sasaki, and H. Takesue, “Quantum information science and technology in Japan,” Quantum Sci. Technol. 4
2019
Later among the works it cites.
B. Sussman, P. Corkum, A. Blais, D. Cory, and A. Damascelli, “Quantum Canada,” Quantum Sci. Technol. 4
2019
Later among the works it cites.
T. M. Roberson and A. G. White, “Charting the Australian quantum landscape,” Quantum Sci. Technol. 4
2019
Later among the works it cites.
S. Deffner and S. Campbell, Quantum Thermodynamics (Morgan & Claypool Publishers, 2019)
2019
Later among the works it cites.
W. Niedenzu, M. Huber, and E. Boukobza, “Concepts of work in autonomous quantum heat engines,” Quantum 3
2019
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M. T. Mitchison, “Quantum thermal absorption machines: refrigerators, engines and clocks,” Contemp. Phys. 60
2019
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C. Cherubim, F. Brito, and S. Deffner, “Non-thermal quantum engine in transmon qubits,” Entropy 21
2019
Later among the works it cites.
J. Wang, J. He, and Y. Ma, “Finite-time performance of a quantum heat engine with a squeezed thermal bath,” Phys. Rev. E 100
2019
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P. A. Camati, J. F. G. Santos, and R. M. Serra, “Coherence effects in the performance of the quantum Otto heat engine,” Phys. Rev. A 99
2019
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M. V. S. Bonança, “Approaching Carnot efficiency at maximum power in linear response regime,” J. Stat. Mech.: Theo. Exp. 2019
2019
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N. Yunger Halpern, C. D. White, S. Gopalakrishnan, and G. Refael, “Quantum engine based on many-body localization,” Phys. Rev. B 99
2019
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M. Kloc, P. Cejnar, and G. Schaller, “Collective performance of a finite-time quantum Otto cycle,” Phys. Rev. E 100
2019
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D. Guéry-Odelin, A. Ruschhaupt, A. Kiely, E. Torrontegui, S. Martínez-Garaot, and J. G. Muga, “Shortcuts to adiabaticity: Concepts, methods, and applications,” Rev. Mod. Phys. 91
2019
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A. Tobalina, I. Lizuain, and J. G. Muga, “Vanishing efficiency of a speeded-up ion-in-Paul-trap Otto engine,” 127
2019
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O. Abah and M. Paternostro, “Shortcut-to-adiabaticity Otto engine: A twist to finite-time thermodynamics,” Phys. Rev. E 99
2019
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B. Çakmak and O. E. Müstecaplıoğlu, “Spin quantum heat engines with shortcuts to adiabaticity,” Phys. Rev. E 99
2019
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P. A. Erdman, V. Cavina, R. Fazio, F. Taddei, and V. Giovannetti, “Maximum power and corresponding efficiency for two-level heat engines and refrigerators: optimality of fast cycles,” New J. Phys. 21
2019
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K. Funo, N. Lambert, B. Karimi, J. P. Pekola, Y. Masuyama, and F. Nori, “Speeding up a quantum refrigerator via counterdiabatic driving,” Phys. Rev. B 100
2019
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S. K. Manikandan, L. Dabelow, R. Eichhorn, and S. Krishnamurthy, “Efficiency fluctuations in microscopic machines,” Phys. Rev. Lett. 122
2019
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D. von Lindenfels, O. Gräb, C. T. Schmiegelow, V. Kaushal, J. Schulz, M. T. Mitchison, J. Goold, F. Schmidt-Kaler, and U. G. Poschinger, “Spin heat engine coupled to a harmonic-oscillator flywheel,” Phys. Rev. Lett. 123
2019
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G. Maslennikov, S. Ding, R. Hablützel, J. Gan, A. Roulet, S. Nimmrichter, J. Dai, V. Scarani, and D. Matsukevich, “Quantum absorption refrigerator with trapped ions,” Nat. Comm. 10
2019
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A. Das and S. Ghosh, “Measurement based quantum heat engine with coupled working medium,” Entropy 21
2019
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L. Buffoni, A. Solfanelli, P. Verrucchi, A. Cuccoli, and M. Campisi, “Quantum measurement cooling,” Phys. Rev. Lett. 122
2019
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N. E. Abari, G. V. D. Angelis, S. Zippilli, and D. Vitali, “An optomechanical heat engine with feedback-controlled in-loop light,” New J. Phys. 21
2019
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J. Lu, R. Wang, J. Ren, M. Kulkarni, and J.-H. Jiang, “Quantum-dot circuit-QED thermoelectric diodes and transistors,” Phys. Rev. B 99
2019
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G. Jaliel, R. K. Puddy, R. Sánchez, A. N. Jordan, B. Sothmann, I. Farrer, J. P. Griffiths, D. A. Ritchie, and C. G. Smith, “Experimental realization of a quantum dot energy harvester,” Phys. Rev. Lett. 123
2019
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K. Micadei, J. P. S. Peterson, A. M. Souza, R. S. Sarthour, I. S. Oliveira, G. T. Landi, T. B. Batalhão, R. M. Serra, and E. Lutz, “Reversing the direction of heat flow using quantum correlations,” Nat. Comm. 10
2019
Later among the works it cites.
J. P. S. Peterson, T. B. Batalhão, M. Herrera, A. M. Souza, R. S. Sarthour, I. S. Oliveira, and R. M. Serra, “Experimental characterization of a spin quantum heat engine,” Phys. Rev. Lett. 123
2019
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E. Köse, S. Çakmak, A. Gençten, I. K. Kominis, and O. E. Müstecaplıoğlu, “Algorithmic quantum heat engines,” Phys. Rev. E 100
2019
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R. J. de Assis, T. M. de Mendonça, C. J. Villas-Boas, A. M. de Souza, R. S. Sarthour, I. S. Oliveira, and N. G. de Almeida, “Efficiency of a quantum Otto heat engine operating under a reservoir at effective negative temperatures,” Phys. Rev. Lett. 122
2019
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J. Klatzow, J. N. Becker, P. M. Ledingham, C. Weinzetl, K. T. Kaczmarek, D. J. Saunders, J. Nunn, I. A. Walmsley, R. Uzdin, and E. Poem, “Experimental demonstration of quantum effects in the operation of microscopic heat engines,” Phys. Rev. Lett. 122
2019
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G. Thomas, D. Das, and S. Ghosh, “Quantum heat engine based on level degeneracy,” Phys. Rev. E 100
2019
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J. O. González, J. P. Palao, D. Alonso, and L. A. Correa, “Classical emulation of quantum-coherent thermal machines,” Phys. Rev. E 99
2019
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G. Manzano, G.-L. Giorgi, R. Fazio, and R. Zambrini, “Boosting the performance of small autonomous refrigerators via common environmental effects,” New J. Phys. 21
2019
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W. Niedenzu, I. Mazets, G. Kurizki, and F. Jendrzejewski, “Quantized refrigerator for an atomic cloud,” Quantum 3
2019
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S. Deffner, “Quantum refrigerators – the quantum thermodynamics of cooling Bose gases,” Quantum Views 3
2019
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F. Schmidt, D. Mayer, Q. Bouton, D. Adam, T. Lausch, J. Nettersheim, E. Tiemann, and A. Widera, “Tailored single-atom collisions at ultralow energies,” Phys. Rev. Lett. 122
2019
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R. Hussein, M. Governale, S. Kohler, W. Belzig, F. Giazotto, and A. Braggio, “Nonlocal thermoelectricity in a cooper-pair splitter,” Phys. Rev. B 99
2019
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G. Haack and F. Giazotto, “Efficient and tunable aharonov-bohm quantum heat engine,” Phys. Rev. B 100
2019
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M. Jamshidi Farsani and R. Fazio, “Quantum heat switch with multiple qubits,” Phys. Lett. A 383
2019
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M. Kayyalha, M. Kargarian, A. Kazakov, I. Miotkowski, V. M. Galitski, V. M. Yakovenko, L. P. Rokhinson, and Y. P. Chen, “Anomalous low-temperature enhancement of supercurrent in topological-insulator nanoribbon Josephson junctions: Evidence for low-energy andreev bound states,” Phys. Rev. Lett. 122
2019
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D. Laroche, D. Bouman, D. J. van Woerkom, A. Proutski, C. Murthy, D. I. Pikulin, C. Nayak, R. J. J. van Gulik, J. Nygård, P. Krogstrup, L. P. Kouwenhoven, and A. Geresdi, “Observation of the 4 π \pi -periodic Josephson effect in indium arsenide nanowires,” Nat. Commun. 10
2019
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K. Ono, T. Mori, and S. Moriyama, “High-temperature operation of a silicon qubit,” Sci. Rep. 9
2019
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P. K. Nayak, S. Mahesh, H. J. Snaith, and D. Cahen, “Photovoltaic solar cell technologies: analysing the state of the art,” Nat. Rev. Mater. 4
2019
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S.-W. Wei and Y.-X. Liu, “Charged ads black hole heat engines,” Nuclear Physics B 946
2019
Later among the works it cites.
P. K. Yerra and C. Bhamidipati, “Heat engines at criticality for nonlinearly charged black holes,” Mod. Phys. Lett. A 34
2019
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J. Zhang, Y. Li, and H. Yu, “Thermodynamics of charged accelerating ads black holes and holographic heat engines,” JHEP 2019
2019
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W. Ahmed, H. Z. Chen, E. Gesteau, R. Gregory, and A. Scoins, “Conical holographic heat engines,” Class. Quantum Grav. 36
2019
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F. Rosso, “Holographic heat engines and static black holes: A general efficiency formula,” Int. J. Mod. Phys. D 28
2019
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D. Astefanesei, R. B. Mann, and R. Rojas, “Hairy black hole chemistry,” JHEP 2019
2019
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J. Liu and D. Segal, “Thermodynamic uncertainty relation in quantum thermoelectric junctions,” Phys. Rev. E 99
2019
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K. Beyer, K. Luoma, and W. T. Strunz, “Steering heat engines: A truly quantum Maxwell demon,” Phys. Rev. Lett. 123
2019
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R. Sánchez, P. Samuelsson, and P. P. Potts, “Autonomous conversion of information to work in quantum dots,” Phys. Rev. Research 1
2019
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J. Stevens and S. Deffner, “Quantum to classical transition in an information ratchet,” Phys. Rev. E 99
2019
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G. Thomas, A. Gubaydullin, D. S. Golubev, and J. P. Pekola, “Thermally pumped on-chip maser,” Phys. Rev. B 102
2020
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Y. Zhang, “Optimization performance of quantum Otto heat engines and refrigerators with squeezed thermal reservoirs,” Physica A 559
2020
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R. J. de Assis, J. S. Sales, J. A. R. da Cunha, and N. G. de Almeida, “Universal two-level quantum Otto machine under a squeezed reservoir,” Phys. Rev. E 102
2020
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Y.-H. Shi, H.-L. Shi, X.-H. Wang, M.-L. Hu, S.-Y. Liu, W.-L. Yang, and H. Fan, “Quantum coherence in a quantum heat engine,” J. Phys. A: Math. Theor. 53
2020
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Y. Yin, L. Chen, F. Wu, and Y. Ge, “Work output and thermal efficiency of an endoreversible entangled quantum stirling engine with one dimensional isotropic Heisenberg model,” Physica A 547
2020
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N. M. Myers and S. Deffner, “Bosons outperform fermions: The thermodynamic advantage of symmetry,” Phys. Rev. E 101
2020
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Z. Smith, P. S. Pal, and S. Deffner, “Endoreversible Otto engines at maximal power,” J. Non-Equilib. Thermodyn. 45
2020
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M. Wiedmann, J. T. Stockburger, and J. Ankerhold, “Non-markovian dynamics of a quantum heat engine: out-of-equilibrium operation and thermal coupling control,” New J. Phys. 22
2020
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V. Mukherjee, A. G. Kofman, and G. Kurizki, “Anti-zeno quantum advantage in fast-driven heat machines,” Commun. Phys. 3
2020
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S. Deffner and M. V. S. Bonança, “Thermodynamic control —an old paradigm with new applications,” EPL (Europhysics Letters) 131
2020
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O. Abah, M. Paternostro, and E. Lutz, “Shortcut-to-adiabaticity quantum Otto refrigerator,” Phys. Rev. Research 2
2020
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A. R. Insinga, “The quantum friction and optimal finite-time performance of the quantum Otto cycle,” Entropy 22
2020
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T. Denzler and E. Lutz, “Efficiency fluctuations of a quantum heat engine,” Phys. Rev. Research 2
2020
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N. Van Horne, D. Yum, T. Dutta, P. Hänggi, J. Gong, D. Poletti, and M. Mukherjee, “Single-atom energy-conversion device with a quantum load,” npj Quantum Information 6
2020
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A. Levy, M. Göb, B. Deng, K. Singer, E. Torrontegui, and D. Wang, “Single-atom heat engine as a sensitive thermal probe,” New J. Phys. 22
2020
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S. Bhattacharjee, U. Bhattacharya, W. Niedenzu, V. Mukherjee, and A. Dutta, “Quantum magnetometry using two-stroke thermal machines,” New J. Phys. 22
2020
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L. Buffoni and M. Campisi, “Thermodynamics of a quantum annealer,” Quantum Sci. Technol. 5
2020
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J. S. Bennett, L. S. Madsen, H. Rubinsztein-Dunlop, and W. P. Bowen, “A quantum heat machine from fast optomechanics,” New J. Phys. 22
2020
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G. Serafini, S. Zippilli, and I. Marzoli, “Optomechanical stirling heat engine driven by feedback-controlled light,” Phys. Rev. A 102
2020
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A. A. Clerk, K. W. Lehnert, P. Bertet, J. R. Petta, and Y. Nakamura, “Hybrid quantum systems with circuit quantum electrodynamics,” Nat. Phys. 16
2020
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T. M. Mendonça, A. M. Souza, R. J. de Assis, N. G. de Almeida, R. S. Sarthour, I. S. Oliveira, and C. J. Villas-Boas, “Reservoir engineering for maximally efficient quantum engines,” Phys. Rev. Research 2
2020
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S. Hernández-Gómez, S. Gherardini, F. Poggiali, F. S. Cataliotti, A. Trombettoni, P. Cappellaro, and N. Fabbri, “Experimental test of exchange fluctuation relations in an open quantum system,” Phys. Rev. Research 2
2020
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N. Pancotti, M. Scandi, M. T. Mitchison, and M. Perarnau-Llobet, “Speed-ups to isothermality: Enhanced quantum thermal machines through control of the system-bath coupling,” Phys. Rev. X 10
2020
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Y. Hong, Y. Xiao, J. He, and J. Wang, “Quantum Otto engine working with interacting spin systems: Finite power performance in stochastic thermodynamics,” Phys. Rev. E 102
2020
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R. Dann and R. Kosloff, “Quantum signatures in the quantum Carnot cycle,” New J. Phys. 22
2020
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A. Das and V. Mukherjee, “Quantum-enhanced finite-time Otto cycle,” Phys. Rev. Research 2
2020
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D. Newman, F. Mintert, and A. Nazir, “Quantum limit to nonequilibrium heat-engine performance imposed by strong system-reservoir coupling,” Phys. Rev. E 101
2020
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F. Carollo, F. M. Gambetta, K. Brandner, J. P. Garrahan, and I. Lesanovsky, “Nonequilibrium quantum many-body rydberg atom engine,” Phys. Rev. Lett. 124
2020
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C. Chiaracane, M. T. Mitchison, A. Purkayastha, G. Haack, and J. Goold, “Quasiperiodic quantum heat engines with a mobility edge,” Phys. Rev. Research 2
2020
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G. De Chiara and M. Antezza, “Quantum machines powered by correlated baths,” Phys. Rev. Research 2
2020
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T. Keller, T. Fogarty, J. Li, and T. Busch, “Feshbach engine in the Thomas-Fermi regime,” Phys. Rev. Research 2
2020
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T. Fogarty and T. Busch, “A many-body heat engine at criticality,” Quantum Sci. Technol. 6
2020
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A. Solfanelli, M. Falsetti, and M. Campisi, “Nonadiabatic single-qubit quantum Otto engine,” Phys. Rev. B 101
2020
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B. Scharf, A. Braggio, E. Strambini, F. Giazotto, and E. M. Hankiewicz, “Topological Josephson heat engine,” Commun. Phys. 3
2020
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G. Blasi, F. Taddei, L. Arrachea, M. Carrega, and A. Braggio, “Nonlocal thermoelectricity in a topological andreev interferometer,” Phys. Rev. B 102
2020
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K. Ono, S. N. Shevchenko, T. Mori, S. Moriyama, and F. Nori, “Analog of a quantum heat engine using a single-spin qubit,” Phys. Rev. Lett. 125
2020
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R. Dann, R. Kosloff, and P. Salamon, “Quantum finite-time thermodynamics: Insight from a single qubit engine,” Entropy 22
2020
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J. Cao, R. J. Cogdell, D. F. Coker, H.-G. Duan, J. Hauer, U. Kleinekathöfer, T. L. C. Jansen, T. Mančal, R. J. D. Miller, J. P. Ogilvie, V. I. Prokhorenko, T. Renger, H.-S. Tan, R. Tempelaar, M. Thorwart, E. Thyrhaug, S. Westenhoff, and D. Zigmantas, “Quantum biology revisited,” Sci. Ad. 6
2020
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F. J. Peña, D. Zambrano, O. Negrete, G. De Chiara, P. A. Orellana, and P. Vargas, “Quasistatic and quantum-adiabatic Otto engine for a two-dimensional material: The case of a graphene quantum dot,” Phys. Rev. E 101
2020
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H. Ghaffarnejad, E. Yaraie, M. Farsam, and K. Bamba, “Hairy black holes and holographic heat engine,” Nuclear Physics B 952
2020
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B. Eslam Panah, K. Jafarzade, and S. Hendi, “Charged 4d Einstein-Gauss-Bonnet-AdS black holes: Shadow, energy emission, deflection angle and heat engine,” Nuc. Phys. B 961
2020
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U. Debnath, “Thermodynamics of frw universe: Heat engine,” Phys. Lett. B 810
2020
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Y. Hasegawa, “Quantum thermodynamic uncertainty relation for continuous measurement,” Phys. Rev. Lett. 125
2020
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C. D. Aiello, D. D. Awschalom, H. Bernien, T. Brower, K. R. Brown, T. A. Brun, J. R. Caram, E. Chitambar, R. D. Felice, K. M. Edmonds, M. F. J. Fox, S. Haas, A. W. Holleitner, E. R. Hudson, J. H. Hunt, R. Joynt, S. Koziol, M. Larsen, H. J. Lewandowski, D. T. McClure, J. Palsberg, G. Passante, K. L. Pudenz, C. J. K. Richardson, J. L. Rosenberg, R. S. Ross, M. Saffman, M. Singh, D. W. Steuerman, C. Stark, J. Thijssen, A. N. Vamivakas, J. D. Whitfield, and B. M. Zwickl, “Achieving a quantum smart workforce,” Quantum Sci. Technol. 6
2021
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T. Roberson, J. Leach, and S. Raman, “Talking about public good for the second quantum revolution: analysing quantum technology narratives in the context of national strategies,” Quantum Sci. Technol. 6
2021
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2021
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A. A. S. Kalaee and A. Wacker, “Positivity of entropy production for the three-level maser,” Phys. Rev. A 103
2021
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K. Hammam, Y. Hassouni, R. Fazio, and G. Manzano, “Optimizing autonomous thermal machines powered by energetic coherence,” New J. Phys. 23
2021
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N. M. Myers, O. Abah, and S. Deffner, “Quantum Otto engines at relativistic energies,” New J. Phys. 23
2021
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2021
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N. M. Myers and S. Deffner, “Thermodynamics of statistical anyons,” PRX Quantum 2
2021
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N. M. Myers, J. McCready, and S. Deffner, “Quantum heat engines with singular interactions,” Symmetry 13
2021
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S. H. Raja, S. Maniscalco, G. S. Paraoanu, J. P. Pekola, and N. L. Gullo, “Finite-time quantum stirling heat engine,” New J. Phys. 23
2021
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2021
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2021
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S. Saryal and B. K. Agarwalla, “Bounds on fluctuations for finite-time quantum Otto cycle,” Phys. Rev. E 103
2021
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T. Denzler and E. Lutz, “Power fluctuations in a finite-time quantum Carnot engine,” Phys. Rev. Research 3
2021
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A. Touil, B. Cakmak, and S. Deffner, “Ergotropy from quantum and classical correlations,” J. Phys. A: Math. Theor. (2021)
2021
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A. Sone and S. Deffner, “Quantum and classical ergotropy from relative entropies,” Entropy 23
2021
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L. Bresque, P. A. Camati, S. Rogers, K. Murch, A. N. Jordan, and A. Auffèves, “Two-qubit engine fueled by entanglement and local measurements,” Phys. Rev. Lett. 126
2021
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S. Barzanjeh, A. Xuereb, S. Gröblacher, M. Paternostro, C. A. Regal, and E. M. Weig, “Optomechanics for quantum technologies,” Nat. Phys. (2021)
2021
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G. Jaliel, “Chapter four - thermoelectric properties of a quantum dot,” in Semiconductor Nanodevices , Frontiers of Nanoscience, Vol. 20, edited by D. A. Ritchie (Elsevier, 2021) pp. 67–100
2021
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S. Hernández-Gómez and N. Fabbri, “Quantum control for nanoscale spectroscopy with diamond nitrogen-vacancy centers: A short review,” Front. Phys. 8
2021
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2021
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S. Zaiser, C. T. Cheung, S. Yang, D. B. R. Dasari, S. Raeisi, and J. Wrachtrup, “Cyclic cooling of quantum systems at the saturation limit,” npj Quantum Information 7
2021
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M. Gluza, J. a. Sabino, N. H. Ng, G. Vitagliano, M. Pezzutto, Y. Omar, I. Mazets, M. Huber, J. Schmiedmayer, and J. Eisert, “Quantum field thermal machines,” PRX Quantum 2
2021
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Q. Bouton, J. Nettersheim, S. Burgardt, D. Adam, E. Lutz, and A. Widera, “A quantum heat engine driven by atomic collisions,” Nat. Commun. 12
2021
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R. S. Johal and V. Mehta, “Quantum heat engines with complex working media, complete Otto cycles and heuristics,” Entropy 23
2021
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G. Blasi, F. Taddei, L. Arrachea, M. Carrega, and A. Braggio, “Nonlocal thermoelectric engines in hybrid topological Josephson junctions,” Phys. Rev. B 103
2021
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S. Chatterjee, A. Koner, S. Chatterjee, and C. Kumar, “Temperature-dependent maximization of work and efficiency in a degeneracy-assisted quantum stirling heat engine,” Phys. Rev. E 103
2021
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D. Gresta, G. Blasi, F. Taddei, M. Carrega, A. Braggio, and L. Arrachea, “Signatures of Jackiw-Rebbi resonance in the thermal conductance of topological Josephson junctions with magnetic islands,” Phys. Rev. B 103
2021
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G. Marchegiani, A. Braggio, and F. Giazotto, “Highly efficient phase-tunable photonic thermal diode,” Appl. Phys. Lett. 118
2021
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2021
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M. Kondo, S. Miyota, W. Izumida, S. Amaha, and T. Hatano, “Thermally assisted pauli spin blockade in double quantum dots,” Phys. Rev. B 103
2021
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