量子信息的过去、现在和未来(34)
2023-05-21 来源:飞速影视
134. R. Lescanne, M. Villiers, T. Peronnin, A. Sarlette, M. Delbecq, B. Huard, T. Kontos, M. Mirrahimi and Z. Leghtas, Exponential suppression of bit-flips in a qubit encoded in an oscillator, Nature Physics 16, 509 (2020).
135. A. Grimm, N. E. Frattini, S. Puri, S. O. Mundhada, S. Touzard, M. Mirrahimi, S. M. Girvin, S. Shankar and M. H. Devoret, Stabilization and operation of a kerr-cat qubit, Nature 584, 205 (2020).
136. L. B. Nguyen, Y.-H. Lin, A. Somoroff, R. Mencia, N. Grabon and V. E. Manucharyan, High-coherence fluxonium qubit, Physical Review X 9, p. 041041 (2019).
137. F. Bao, H. Deng, D. Ding, R. Gao, X. Gao, C. Huang, X. Jiang, H.-S. Ku, Z. Li, X. Ma et al., Fluxonium: an alternative qubit platform for high-fidelity operations, Physical Review Letters 129, p. 010502 (2022).
138. P. Brooks, A. Kitaev and J. Preskill, Protected gates for superconducting qubits, Physical Review A 87, p. 052306 (2013).
139. A. Gyenis, P. S. Mundada, A. Di Paolo, T. M. Hazard, X. You, D. I. Schuster, J. Koch, A. Blais and A. A. Houck, Experimental realization of a protected superconducting circuit derived from the 0–π qubit, PRX Quantum 2, p. 010339 (2021).