Fetching the paper…
Reading the bibliography…
The optimal control of open quantum systems is a challenging task but has a key role in improving existing quantum information processing technologies.
F. Curzon and B. Ahlborn, Efficiency of a carnot engine at maximum power output, Am. J. Phys. 43
1975
Earlier work this paper cites.
V. Gorini, A. Kossakowski, and E. C. G. Sudarshan, Completely positive dynamical semigroups of N‐level systems, J. Math. Phys. 17
1976
Earlier work this paper cites.
G. Lindblad, On the generators of quantum dynamical semigroups, Commun. Math. Phys 48
1976
Earlier work this paper cites.
R. Alicki, The quantum open system as a model of the heat engine, J. Phys. A: Math. Gen. 12
1979
Earlier work this paper cites.
C. W. J. Beenakker, Theory of coulomb-blockade oscillations in the conductance of a quantum dot, Phys. Rev. B 44
1991
Earlier work this paper cites.
T. Feldmann, E. Geva, R. Kosloff, and P. Salamon, Heat engines in finite time governed by master equations, Am. J. Phys. 64
1996
Earlier work this paper cites.
T. Feldmann and R. Kosloff, Performance of discrete heat engines and heat pumps in finite time, Phys. Rev. E 61
2000
Earlier work this paper cites.
R. Kosloff and T. Feldmann, Discrete four-stroke quantum heat engine exploring the origin of friction, Phys. Rev. E 65
2002
Earlier work this paper cites.
H. Breuer and F. Petruccione, The theory of open quantum systems (Oxford University Press, 2002)
2002
Earlier work this paper cites.
A. Wallraff et al.,
2004
Earlier work this paper cites.
J. R. Petta et al.,
2005
Earlier work this paper cites.
C. V. den Broeck, Thermodynamic efficiency at maximum power, Phys. Rev. Lett. 95
2005
Earlier work this paper cites.
F. Giazotto, T. T. Heikkilä, A. Luukanen, A. M. Savin, and J. P. Pekola, Opportunities for mesoscopics in thermometry and refrigeration: Physics and applications, Rev. Mod. Phys. 78
2006
Earlier work this paper cites.
L. Childress et al.,
2006
Earlier work this paper cites.
Y. Rezek and R. Kosloff, Irreversible performance of a quantum harmonic heat engine, New J. Phys. 8
2006
Earlier work this paper cites.
L. Arrachea, M. Moskalets, and L. Martin-Moreno, Heat production and energy balance in nanoscale engines driven by time-dependent fields, Phys. Rev. B 75
2007
Earlier work this paper cites.
H. Quan, Y. Liu, C. Sun, and F. Nori, Quantum thermodynamic cycles and quantum heat engines, Phys. Rev. E 76
2007
Earlier work this paper cites.
T. Schmiedl and U. Seifert, Efficiency at maximum power: An analytically solvable model for stochastic heat engines, Europhys. Lett. 81
2007
Earlier work this paper cites.
H. Friedenauer, H. Schmitz, J. Glueckert, D. Porras, and T. Schaetz, Simulating a quantum magnet with trapped ions, Nat. Phys. 4
2008
Earlier work this paper cites.
M. V. Berry, Transitionless quantum driving, J. Phys. A: Math. Theor. 42
2009
Earlier work this paper cites.
M. Esposito, K. Lindenberg, and C. V. den Broeck, Thermoelectric efficiency at maximum power in a quantum dot, Eurphys. Lett. 85
2009
Earlier work this paper cites.
Y. V. Nazarov and Y. M. Banter, Quantum Transport (Cambridge, New York, 2009)
2009
Earlier work this paper cites.
J. Wang, J. He, and X. He, Performance analysis of a two-state quantum heat engine working with a single-mode radiation field in a cavity, Phys. Rev. E 84
2011
Earlier work this paper cites.
M. O. Scully, K. R. Chapin, K. E. Dorfman, M. B. Kim, and A. Svidzinsky, Quantum heat engine power can be increased by noise-induced coherence, Proc. Natl. Acad. Sci. U.S.A. 108
2011
Earlier work this paper cites.
R. Blatt and C. Roos, Quantum simulations with trapped ions, Nat. Phys. 8
2012
Earlier work this paper cites.
J. E. Avron, M. Fraas, G. M. Graf, and P. Grech, Adiabatic theorems for generators of contracting evolutions, Commun. Math. Phys. 314
2012
Earlier work this paper cites.
O. Abah et al.,
2012
Earlier work this paper cites.
S. Juergens, F. Haupt, M. Moskalets, and J. Splettstoesser, Thermoelectric performance of a driven double quantum dot, Phys. Rev. B 87
2013
Earlier work this paper cites.
A. E. Allahverdyan, K. V. Hovhannisyan, A. V. Melkikh, and S. G. Gevorkian, Carnot cycle at finite power: Attainability of maximal efficiency, Phys. Rev. Lett. 111
2013
Earlier work this paper cites.
J. Deng, Q.-h. Wang, Z. Liu, P. Hänggi, and J. Gong, Boosting work characteristics and overall heat-engine performance via shortcuts to adiabaticity: Quantum and classical systems, Phys. Rev. E 88
2013
Earlier work this paper cites.
E. Torrontegui et al.,
2013
Earlier work this paper cites.
G. Fagas, L. Gammaitoni, D. Paul, and G. A. Berini, ICT - Energy - Concepts Towards Zero Power Information and Communication Technology (InTech, 2014)
2014
Earlier work this paper cites.
K. Zhang, F. Bariani, and P. Meystre, Quantum optomechanical heat engine, Phys. Rev. Lett. 112
2014
Earlier work this paper cites.
A. del Campo, J. Goold, and M. Paternostro, More bang for your buck: Super-adiabatic quantum engines, Sci. Rep. 4
2014
Earlier work this paper cites.
2014
Earlier work this paper cites.
T. Baumgratz, M. Cramer, and M. B. Plenio, Quantifying coherence, Phys. Rev. Lett. 113
2014
Cited alongside, same era.
R. Gallego, A. Riera, and J. Eisert, Thermal machines beyond the weak coupling regime, New J. Phys. 16
2014
Cited alongside, same era.
J. P. Pekola, Towards quantum thermodynamics in electronic circuits, Nat. Phys. 11
2015
Cited alongside, same era.
M. Campisi, J. Pekola, and R. Fazio, Nonequilibrium fluctuations in quantum heat engines: theory, example, and possible solid state experiments, New J. Phys. 17
2015
Cited alongside, same era.
R. Uzdin, A. Levy, and R. Kosloff, Equivalence of quantum heat machines, and quantum-thermodynamic signatures, Phys. Rev. X 5
2015
Cited alongside, same era.
V. Mnih et al.,
B. Dutta et al.,
2019
Later among the works it cites.
J. Klatzow et al.,
2019
Later among the works it cites.
D. von Lindenfels et al.,
2019
Later among the works it cites.
G. Maslennikov, et al.,
2019
Later among the works it cites.
J. P. S. Peterson et al.,
2019
Later among the works it cites.
D. Prete et al.,
2019
Later among the works it cites.
P. Abiuso and V. Giovannetti, Non-markov enhancement of maximum power for quantum thermal machines, Phys. Rev. A 99
2019
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
2015
Cited alongside, same era.
D. Gelbwaser-Klimovsky and A. Aspuru-Guzik, Strongly coupled quantum heat machines, J. Phys. Chem. Lett. 6
2015
Cited alongside, same era.
S. Vinjanampathy and J. Anders, Quantum thermodynamics, Contemp. Phys. 57
2016
Cited alongside, same era.
J. Roßnagel et al.,
2016
Cited alongside, same era.
M. F. Ludovico, F. Battista, F. von Oppen, and L. Arrachea, Adiabatic response and quantum thermoelectrics for ac-driven quantum systems, Phys. Rev. B 93
2016
Cited alongside, same era.
M. Campisi and R. Fazio, The power of a critical heat engine, Nat. Commun. 7
2016
Cited alongside, same era.
B. Karimi and J. P. Pekola, Otto refrigerator based on a superconducting qubit: Classical and quantum performance, Phys. Rev. B 94
2016
Cited alongside, same era.
J. Chen, C. Sun, and H. Dong, Boosting the performance of quantum otto heat engines, Phys. Rev. E 100
2019
Later among the works it cites.
J. P. Pekola, B. Karimi, G. Thomas, and D. V. Averin, Supremacy of incoherent sudden cycles, Phys. Rev. B 100
2019
Later among the works it cites.
B. Çakmak and O. E. Müstecaplıoğlu, Spin quantum heat engines with shortcuts to adiabaticity, Phys. Rev. E 99
2019
Later among the works it cites.
K. Funo et al.,
2019
Later among the works it cites.
T. Villazon, A. Polkovnikov, and A. Chandran, Swift heat transfer by fast-forward driving in open quantum systems, Phys. Rev. A 100
2019
Later among the works it cites.
P. Menczel, T. Pyhäranta, C. Flindt, and K. Brandner, Two-stroke optimization scheme for mesoscopic refrigerators, Phys. Rev. B 99
2019
Later among the works it cites.
2019
Later among the works it cites.
2019
Later among the works it cites.
O. Vinyals et al.,
2019
Later among the works it cites.
Z. An and D. Zhou, Deep reinforcement learning for quantum gate control, EPL 126
2019
Later among the works it cites.
M. Y. Niu, S. Boixo, V. N. Smelyanskiy, and H. Neven, Universal quantum control through deep reinforcement learning, NPJ Quantum Inf. 5
2019
Later among the works it cites.
X.-M. Zhang, Z. Wei, R. Asad, X.-C. Yang, and X. Wang, When does reinforcement learning stand out in quantum control? a comparative study on state preparation, NPJ Quantum Inf. 5
2019
Later among the works it cites.
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
Later among the works it cites.
O. Maillet, D. Subero, J. T. Peltonen, D. S. Golubev, and J. P. Pekola, Electric field control of radiative heat transfer in a superconducting circuit , Nat. Commun. 11
2020
Later among the works it cites.
J. Senior et al.,
2020
Later among the works it cites.
N. V. Horne et al.,
2020
Later among the works it cites.
B. Bhandari et al.,
2020
Later among the works it cites.
P. Abiuso and M. Perarnau-Llobet, Optimal cycles for low-dissipation heat engines, Phys. Rev. Lett. 124
2020
Later among the works it cites.
P. Abiuso, H. J. D. Mille, M. Perarnau-Llobet, and M. Scandi, Geometric optimisation of quantum thermodynamic processes, Entropy 22
2020
Later among the works it cites.
R. Dann and R. Kosloff, Quantum signatures in the quantum carnot cycle, New J. Phys. 22
2020
Later among the works it cites.
O. A. D. Molitor and G. T. Landi, Stroboscopic two-stroke quantum heat engines, Phys. Rev. A 102
2020
Later among the works it cites.
A. Das and V. Mukherjee, Quantum-enhanced finite-time otto cycle, Phys. Rev. B 2
2020
Later among the works it cites.
M. Dalgaard, F. Motzoi, J. J. Sørensen, and J. Sherson, Global optimization of quantum dynamics with alphazero deep exploration, NPJ Quantum Inf. 6
2020
Later among the works it cites.
J. Mackeprang, D. B. R. Dasari, and J. Wrachtrup, A reinforcement learning approach for quantum state engineering, Quantum Mach. Intell. 2
2020
Later among the works it cites.
R. Sweke, M. S. Kesselring, E. P. L. van Nieuwenburg, and J. Eisert, Reinforcement learning decoders for fault-tolerant quantum computation, Mach. Learn.: Sci. Technol. 2
2020
Later among the works it cites.
V. Cavina, P. A. Erdman, P. Abiuso, L. Tolomeo, and V. Giovannetti, Maximum power heat engines and refrigerators in the fast-driving regime, Phys. Rev. A 104
2021
Closest in time.
P. Sgroi, G. M. Palma, and M. Paternostro, Reinforcement learning approach to nonequilibrium quantum thermodynamics, Phys. Rev. Lett. 126
2021
Closest in time.