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The Toffoli gate takes a special place in the quantum information theory.
T. Toffoli, Reversible computing, in International Colloquium on Automata, Languages and Programming (1980)
1980
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2005
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2008
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2011
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A. Fedorov, L. Steffen, M. Baur, M. P. da Silva, and A. Wallraff, Implementation of a toffoli gate with superconducting circuits, Nature 481
2011
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2012
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2014
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2015
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2016
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2017
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T. Häner, M. Roetteler, and K. M. Svore, Factoring using 2n + 2 qubits with toffoli based modular multiplication, Quantum Info. Comput. 17
2017
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C. Figgatt, D. Maslov, K. A. Landsman, N. M. Linke, S. Debnath, and C. Monroe, Complete 3-qubit grover search on a programmable quantum computer, Nature communications 8
2017
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2021
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I. N. Moskalenko, I. S. Besedin, I. A. Simakov, and A. V. Ustinov, Tunable coupling scheme for implementing two-qubit gates on fluxonium qubits, Applied Physics Letters 119
2021
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K. Bharti, A. Cervera-Lierta, T. H. Kyaw, T. Haug, S. Alperin-Lea, A. Anand, M. Degroote, H. Heimonen, J. S. Kottmann, T. Menke, W.-K. Mok, S. Sim, L.-C. Kwek, and A. Aspuru-Guzik, Noisy intermediate-scale quantum algorithms, Rev. Mod. Phys. 94
2022
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Towards practical quantum computers: transmon qubit with a lifetime approaching 0.5 milliseconds, npj Quantum Information 8
2022
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2017
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J. Preskill, Quantum Computing in the NISQ era and beyond, Quantum 2
2018
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F. Arute, K. Arya, R. Babbush, D. Bacon, J. C. Bardin, R. Barends, R. Biswas, S. Boixo, F. G. Brandao, D. A. Buell, et al. , Quantum supremacy using a programmable superconducting processor, Nature 574
2019
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2019
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N. Lacroix, C. Hellings, C. K. Andersen, A. Di Paolo, A. Remm, S. Lazar, S. Krinner, G. J. Norris, M. Gabureac, J. Heinsoo, A. Blais, C. Eichler, and A. Wallraff, Improving the performance of deep quantum optimization algorithms with continuous gate sets, PRX Quantum 1
2020
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Y. Shi, P. Gokhale, P. Murali, J. M. Baker, C. Duckering, Y. Ding, N. C. Brown, C. Chamberland, A. Javadi-Abhari, A. W. Cross, D. I. Schuster, K. R. Brown, M. Martonosi, and F. T. Chong, Resource-efficient quantum computing by breaking abstractions, Proceedings of the IEEE 108
2020
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D. M. Abrams, N. Didier, B. R. Johnson, M. P. d. Silva, and C. A. Ryan, Implementation of xy entangling gates with a single calibrated pulse, Nature Electronics 3
2020
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T. Roy, S. Hazra, S. Kundu, M. Chand, M. P. Patankar, and R. Vijay, Programmable superconducting processor with native three-qubit gates, Phys. Rev. Appl. 14
2020
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A. S. Nikolaeva, E. O. Kiktenko, and A. K. Fedorov, Decomposing the generalized toffoli gate with qutrits, Phys. Rev. A 105
2022
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Y. Kim, A. Morvan, L. B. Nguyen, R. K. Naik, C. Jünger, L. Chen, J. M. Kreikebaum, D. I. Santiago, and I. Siddiqi, High-fidelity three-qubit iToffoli gate for fixed-frequency superconducting qubits, Nature Physics 18
2022
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2022
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I. N. Moskalenko, I. A. Simakov, N. N. Abramov, A. A. Grigorev, D. O. Moskalev, A. A. Pishchimova, N. S. Smirnov, E. V. Zikiy, I. A. Rodionov, and I. S. Besedin, High fidelity two-qubit gates on fluxoniums using a tunable coupler, npj Quantum Information 8
2022
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D. Weiss, H. Zhang, C. Ding, Y. Ma, D. I. Schuster, and J. Koch, Fast high-fidelity gates for galvanically-coupled fluxonium qubits using strong flux modulation, PRX Quantum 3
2022
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S. Krinner, N. Lacroix, A. Remm, A. D. Paolo, E. Genois, C. Leroux, C. Hellings, S. Lazar, F. Swiadek, J. Herrmann, G. J. Norris, C. K. Andersen, M. Müller, A. Blais, C. Eichler, and A. Wallraff, Realizing repeated quantum error correction in a distance-three surface code, Nature 605
2022
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R. Acharya, I. Aleiner, R. Allen, T. I. Andersen, M. Ansmann, F. Arute, K. Arya, A. Asfaw, J. Atalaya, R. Babbush, et al. , Suppressing quantum errors by scaling a surface code logical qubit, Nature 614
2023
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C. W. Warren, J. Fernández-Pendás, S. Ahmed, T. Abad, A. Bengtsson, J. Biznárová, K. Debnath, X. Gu, C. Križan, A. Osman, A. Fadavi Roudsari, P. Delsing, G. Johansson, A. Frisk Kockum, G. Tancredi, and J. Bylander, Extensive characterization and implementation of a family of three-qubit gates at the coherence limit, npj Quantum Information 9
2023
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N. J. Glaser, F. Roy, and S. Filipp, Controlled-controlled-phase gates for superconducting qubits mediated by a shared tunable coupler, Phys. Rev. Appl. 19
2023
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A. Somoroff, Q. Ficheux, R. A. Mencia, H. Xiong, R. Kuzmin, and V. E. Manucharyan, Millisecond coherence in a superconducting qubit, Phys. Rev. Lett. 130
2023
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L. Ding, M. Hays, Y. Sung, B. Kannan, J. An, A. Di Paolo, A. H. Karamlou, T. M. Hazard, K. Azar, D. K. Kim, B. M. Niedzielski, A. Melville, M. E. Schwartz, J. L. Yoder, T. P. Orlando, S. Gustavsson, J. A. Grover, K. Serniak, and W. D. Oliver, High-fidelity, frequency-flexible two-qubit fluxonium gates with a transmon coupler, Phys. Rev. X 13
2023
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I. A. Simakov, G. S. Mazhorin, I. N. Moskalenko, N. N. Abramov, A. A. Grigorev, D. O. Moskalev, A. A. Pishchimova, N. S. Smirnov, E. V. Zikiy, I. A. Rodionov, and I. S. Besedin, Coupler microwave-activated controlled-phase gate on fluxonium qubits, PRX Quantum 4
2023
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