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High-quality two-qubit gate operations are crucial for scalable quantum information processing.
J. Koch, T. M. Yu, J. Gambetta, A. A. Houck, D. I. Schuster, J. Majer, A. Blais, M. H. Devoret, S. M. Girvin, and R. J. Schoelkopf, “Charge-insensitive qubit design derived from the Cooper pair box,” Phys. Rev. A 76
2007
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2008
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2011
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2011
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E. Magesan, J. M. Gambetta, B. R. Johnson, C. A. Ryan, J. M. Chow, S. T. Merkel, M. P. da Silva, G. A. Keefe, M. B. Rothwell, T. A. Ohki, M. B. Ketchen, and M. Steffen, “Efficient measurement of quantum gate error by interleaved randomized benchmarking,” Phys. Rev. Lett. 109
2012
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2014
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J. M. Martinis and M. R. Geller, “Fast adiabatic qubit gates using only σ z {\sigma}_{z} control,” Phys. Rev. A 90
2014
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R. Barends, J. Kelly, A. Megrant, A. Veitia, D. Sank, E. Jeffrey, T. C. White, J. Mutus, A. G. Fowler, B. Campbell, et al. , “Superconducting quantum circuits at the surface code threshold for fault tolerance,” Nature 508
2014
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2014
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J. M. Epstein, A. W. Cross, E. Magesan, and J. M. Gambetta, “Investigating the limits of randomized benchmarking protocols,” Phys. Rev. A 89
2014
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P. J. J. O’Malley, J. Kelly, R. Barends, B. Campbell, Y. Chen, Z. Chen, B. Chiaro, A. Dunsworth, A. G. Fowler, I.-C. Hoi, E. Jeffrey, A. Megrant, J. Mutus, C. Neill, C. Quintana, P. Roushan, D. Sank, A. Vainsencher, J. Wenner, T. C. White, A. N. Korotkov, A. N. Cleland, and J. M. Martinis, “Qubit metrology of ultralow phase noise using randomized benchmarking,” Phys. Rev. Applied 3
2015
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2016
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2017
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D. C. McKay, C. J. Wood, S. Sheldon, J. M. Chow, and J. M. Gambetta, “Efficient z z gates for quantum computing,” Phys. Rev. A 96
2017
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J. Preskill, “Quantum Computing in the NISQ era and beyond,” Quantum 2
2018
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D. M. Zajac, A. J. Sigillito, M. Russ, F. Borjans, J. M. Taylor, G. Burkard, and J. R. Petta, “Resonantly driven cnot gate for electron spins,” Science 359
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S. Li, A. D. Castellano, S. Wang, Y. Wu, M. Gong, Z. Yan, H. Rong, H. Deng, C. Zha, C. Guo, et al. , “Realisation of high-fidelity nonadiabatic CZ gates with superconducting qubits,” npj Quantum Inf. 5
2019
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R. Barends, C. M. Quintana, A. G. Petukhov, Y. Chen, D. Kafri, K. Kechedzhi, R. Collins, O. Naaman, S. Boixo, F. Arute, et al. , “Diabatic gates for frequency-tunable superconducting qubits,” Phys. Rev. Lett. 123
2019
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2018
Cited alongside, same era.
F. Yan, P. Krantz, Y. Sung, M. Kjaergaard, D. L. Campbell, T. P. Orlando, S. Gustavsson, and W. D. Oliver, “Tunable coupling scheme for implementing high-fidelity two-qubit gates,” Phys. Rev. Applied 10
2018
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S. A. Caldwell, N. Didier, C. A. Ryan, E. A. Sete, A. Hudson, P. Karalekas, R. Manenti, M. P. da Silva, R. Sinclair, E. Acala, N. Alidoust, et al. , “Parametrically activated entangling gates using transmon qubits,” Phys. Rev. Appl. 10
2018
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F. Arute, K. Arya, R. Babbush, D. Bacon, J. C. Bardin, R. Barends, R. Biswas, S. Boixo, F. G. S. L. Brandao, D. A. Buell, et al. , “Quantum supremacy using a programmable superconducting processor,” Nature 574
2019
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A. Omran, H. Levine, A. Keesling, G. Semeghini, T. T. Wang, S. Ebadi, H. Bernien, A. S. Zibrov, H. Pichler, S. Choi, J. Cui, M. Rossignolo, P. Rembold, S. Montangero, T. Calarco, M. Endres, M. Greiner, V. Vuletić, and M. D. Lukin, “Generation and manipulation of schrödinger cat states in rydberg atom arrays,” Science 365
2019
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C. Song, K. Xu, H. Li, Y.-R. Zhang, X. Zhang, W. Liu, Q. Guo, Z. Wang, W. Ren, J. Hao, H. Feng, H. Fan, D. Zheng, D.-W. Wang, H. Wang, and S.-Y. Zhu, “Generation of multicomponent atomic schrödinger cat states of up to 20 qubits,” Science 365
2019
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Z. Yan, Y.-R. Zhang, M. Gong, Y. Wu, Y. Zheng, S. Li, C. Wang, F. Liang, J. Lin, Y. Xu, C. Guo, L. Sun, C.-Z. Peng, K. Xia, H. Deng, H. Rong, J. Q. You, F. Nori, H. Fan, X. Zhu, and J.-W. Pan, “Strongly correlated quantum walks with a 12-qubit superconducting processor,” Science 364
2019
Cited alongside, same era.
K. Wright, K. M. Beck, S. Debnath, J. M. Amini, Y. Nam, N. Grzesiak, J.-S. Chen, N. C. Pisenti, M. Chmielewski, C. Collins, et al. , “Benchmarking an 11-qubit quantum computer,” Nat. Commun. 10
2019
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2020
Closest in time.
X. Li, T. Cai, H. Yan, Z. Wang, X. Pan, Y. Ma, W. Cai, J. Han, Z. Hua, X. Han, et al. , “Tunable coupler for realizing a controlled-phase gate with dynamically decoupled regime in a superconducting circuit,” Phys. Rev. Applied 14
2020
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X. Y. Han, T. Q. Cai, X. G. Li, Y. K. Wu, Y. W. Ma, Y. L. Ma, J. H. Wang, H. Y. Zhang, Y. P. Song, and L. M. Duan, “Error analysis in suppression of unwanted qubit interactions for a parametric gate in a tunable superconducting circuit,” Phys. Rev. A 102
2020
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B. Foxen, C. Neill, A. Dunsworth, P. Roushan, B. Chiaro, A. Megrant, J. Kelly, Z. Chen, K.Satzinger, R. Barends, et al. , “Demonstrating a Continuous Set of Two-qubit Gates for Near-term Quantum Algorithms,” Phys. Rev. Lett. 125
2020
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A. Bengtsson, P. Vikstål, C. Warren, M. Svensson, X. Gu, A. F. Kockum, P. Krantz, C. Križan, D. Shiri, I.-M. Svensson, et al. , “Improved success probability with greater circuit depth for the quantum approximate optimization algorithm,” Phys. Rev. Applied 14
2020
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2020
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J. Qiu et al. , in preparation. (2020)
2020
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J. Chu et al. , in preparation. (2020)
2020
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2020
Closest in time.