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Superconducting circuits present a promising platform with which to realize a quantum refrigerator.
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2009
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M. Josefsson, A. Svilans, A. M. Burke, E. A. Hoffmann, S. Fahlvik, C. Thelander, M. Leijnse, and H. Linke, “A quantum-dot heat engine operating close to the thermodynamic efficiency limits,” Nat. Nanotechnol. 13
2018
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A. Ronzani, B. Karimi, J. Senior, Y.-C. Chang, J. T. Peltonen, C. Chen, and J. P. Pekola, “Tunable photonic heat transport in a quantum heat valve,” Nat. Phys. 14
2018
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F. Binder, L. A. Correa, C. Gogolin, J. Anders, and G. Adesso, Thermodynamics in the Quantum Regime (Springer-Verlag GmbH, 2019)
2019
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2019
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Z. Kim, B. Suri, V. Zaretskey, S. Novikov, K. D. Osborn, A. Mizel, F. C. Wellstood, and B. S. Palmer, “Decoupling a Cooper-pair box to enhance the lifetime to 0.2 ms,” Phys. Rev. Lett. 106
2011
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L. Sun, L. DiCarlo, M. D. Reed, G. Catelani, L. S. Bishop, D. I. Schuster, B. R. Johnson, G. A. Yang, L. Frunzio, L. Glazman, M. H. Devoret, and R. J. Schoelkopf, “Measurements of quasiparticle tunneling dynamics in a band-gap-engineered transmon qubit,” Phys. Rev. Lett. 108
2012
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2013
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2013
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2014
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Y. Hao, F. Rouxinol, and M. D. LaHaye, “Development of a broadband reflective T-filter for voltage biasing high-Q superconducting microwave cavities,” Appl. Phys. Lett. 105
2014
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S. Probst, F. B. Song, P. A. Bushev, A. V. Ustinov, and M. Weides, “Efficient and robust analysis of complex scattering data under noise in microwave resonators,” Rev. Sci. Instrum. 86
2015
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Y.-C. Chang, B. Karimi, J. Senior, A. Ronzani, J. T. Peltonen, H.-S. Goan, C.-D. Chen, and J. P. Pekola, “Utilization of the superconducting transition for characterizing low-quality-factor superconducting resonators,” Appl. Phys. Lett. 115
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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J. P. Pekola, B. Karimi, G. Thomas, and D. V. Averin, “Supremacy of incoherent sudden cycles,” Phys. Rev. B 100
2019
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K. Serniak, S. Diamond, M. Hays, V. Fatemi, S. Shankar, L. Frunzio, R. Schoelkopf, and M. Devoret, “Direct dispersive monitoring of charge parity in offset-charge-sensitive transmons,” Phys. Rev. Applied 12
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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P. Menczel, T. Pyhäranta, C. Flindt, and K. Brandner, “Two-stroke optimization scheme for mesoscopic refrigerators,” Phys. Rev. B 99
2019
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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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M. Kjaergaard, M. E. Schwartz, J. Braumüller, P. Krantz, J. I.-J. Wang, S. Gustavsson, and W. D. Oliver, “Superconducting qubits: Current state of play,” Annu. Rev. Condens. Matter Phys. 11
2020
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J. Senior, A. Gubaydullin, B. Karimi, J. T. Peltonen, J. Ankerhold, and J. P. Pekola, “Heat rectification via a superconducting artificial atom,” Communications Physics 3
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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A. Solfanelli, M. Falsetti, and M. Campisi, “Nonadiabatic single-qubit quantum Otto engine,” Phys. Rev. B 101
2020
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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
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R. Stassi, M. Cirio, and F. Nori, “Scalable quantum computer with superconducting circuits in the ultrastrong coupling regime,” npj Quantum Inf. 6
2020
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J. P. Pekola and B. Karimi, “Colloquium: Quantum heat transport in condensed matter systems,” Rev. Mod. Phys. 93
2021
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M. Kloc, K. Meier, K. Hadjikyriakos, and G. Schaller, “Superradiant many-qubit absorption refrigerator,” Phys. Rev. Applied 16
2021
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2021
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G. Catelani and J. P. Pekola, “Using materials for quasiparticle engineering,” Materials for Quantum Technology 2
2022
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