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Achieving fast gates and long coherence times for superconducting qubits presents challenges, typically requiring either a stronger coupling of the drive line or an excessively strong microwave signal to the qubit.
Effect of an arbitrary dissipative circuit on the quantum energy levels and tunneling of a Josephson junction
Esteve, D., Devoret, M. H. & Martinis, J. M · 1986
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Quantum computations with cold trapped ions
Cirac, J. I. & Zoller, P · 1995
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Quantum computation with quantum dots
Loss, D. & DiVincenzo, D. P · 1998
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Coherent control of macroscopic quantum states in a single-Cooper-pair box
Nakamura, Y., Pashkin, Y. A. & Tsai, J. S · 1999
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Josephson persistent-current qubit
Mooij, J. E. et al · 1999
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The physical implementation of quantum computation
DiVincenzo, D. P · 2000
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Quantum superposition of distinct macroscopic states
Friedman, J. R., Patel, V., Chen, W., Tolpygo, S. K. & Lukens, J. E · 2000
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A scheme for efficient quantum computation with linear optics
Knill, E., Laflamme, R. & Milburn, G. J · 2001
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Time-resolved measurement of dissipation-induced decoherence in a Josephson junction
Han, S., Yu, Y., Chu, X., Chu, S. I. & Wang, Z · 2001
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Decoherence in josephson phase qubits from junction resonators
Simmonds, R. W. et al · 2004
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Resource-efficient linear optical quantum computation
Browne, D. E. & Rudolph, T · 2005
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Implementing qubits with superconducting integrated circuits
Devoret, M. H. & Martinis, J. M · 2005
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Decoherence in Josephson qubits from dielectric Loss
Martinis, J. M. et al · 2005
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Kinetics of the superconducting charge qubit in the presence of a quasiparticle
Lutchyn, R. M., Glazman, L. I. & Larkin, A. I · 2006
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Optical quantum computing
O’Brien, J. L · 2007
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Charge-insensitive qubit design derived from the Cooper pair box
Koch, J. et al · 2007
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A semiempirical model for two-level system noise in superconducting microresonators
Gao, J. et al · 2008
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Controlling the spontaneous emission of a superconducting transmon qubit
Houck, A. A. et al · 2008
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Properties of superconducting planar resonators at millikelvin temperatures
Lindström, T., Healey, J. E., Colclough, M. S., Muirhead, C. M. & Tzalenchuk, A. Y · 2009
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Improving the coherence time of superconducting coplanar resonators
Wang, H. et al · 2009
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Losses in coplanar waveguide resonators at millikelvin temperatures
Macha, P. et al · 2010
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Two level system loss in superconducting microwave resonators
Pappas, D. P., Vissers, M. R., Wisbey, D. S., Kline, J. S. & Gao, J · 2011
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Observation of high coherence in Josephson junction qubits measured in a three-dimensional circuit QED architecture
Paik, H. et al · 2011
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Quasiparticle relaxation of superconducting qubits in the presence of flux
Catelani, G. et al · 2011
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Decoherence of superconducting qubits caused by quasiparticle tunneling
Catelani, G., Nigg, S. E., Girvin, S. M., Schoelkopf, R. J. & Glazman, L. I · 2012
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Planar superconducting resonators with internal quality factors above one million
Megrant, A. et al · 2012
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Fluctuations from edge defects in superconducting resonators
Neill, C. et al · 2013
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Improved superconducting qubit coherence using titanium nitride
Chang, J. B. et al · 2013
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Coherent josephson qubit suitable for scalable quantum integrated circuits
Barends, R. et al · 2013
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Leakage reduction in fast superconducting qubit gates via optimal control
Werninghaus, M. et al · 2021
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Material matters in superconducting qubits
Murray, C. E · 2021
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Engineering high-coherence superconducting qubits
Siddiqi, I · 2021
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Circuit quantum electrodynamics
Blais, A., Grimsmo, A. L., Girvin, S. M. & Wallraff, A · 2021
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Universal Fast-Flux Control of a Coherent, Low-Frequency Qubit
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A quantum processor based on coherent transport of entangled atom arrays
Bluvstein, D. et al · 2022
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1/ f noise: Implications for solid-state quantum information
Paladino, E., Galperin, Y., Falci, G. & Altshuler, B. L · 2014
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Evidence for interacting two-level systems from the 1/f noise of a superconducting resonator
Burnett, J. et al · 2014
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Coherent suppression of electromagnetic dissipation due to superconducting quasiparticles
Pop, I. M. et al · 2014
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Flux qubits with long coherence times for hybrid quantum circuits
Stern, M. et al · 2014
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Frisk Kockum, A., Delsing, P. & Johansson, G · 2014
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Jeffrey, E. et al · 2014
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Towards practical quantum computers: transmon qubit with a lifetime approaching 0.5 milliseconds
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Path toward manufacturable superconducting qubits with relaxation times exceeding 0.1 ms
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Suppressing the Dielectric Loss in Superconducting Qubits through Useful Geometry Design
He, H., Wang, W., Liu, F., Yuan, B. & Shan, Z · 2022
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Surface loss calculations and design of a superconducting transmon qubit with tapered wiring
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Unimon qubit
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Logical quantum processor based on reconfigurable atom arrays
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Semiconductor spin qubits
Burkard, G., Ladd, T. D., Pan, A., Nichol, J. M. & Petta, J. R · 2023
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Millisecond Coherence in a Superconducting Qubit
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High-Fidelity, Frequency-Flexible Two-Qubit Fluxonium Gates with a Transmon Coupler
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Titanium Nitride Film on Sapphire Substrate with Low Dielectric Loss for Superconducting Qubits
Deng, H. et al · 2023
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Fast superconducting qubit control with sub-harmonic drives (2023)
Xia, M. et al · 2023
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Data and codes for ”Decay-protected superconducting qubit with fast control enabled by integrated on-chip filters” (2024)
Sah, A., Kundu, S., Suominen, H., Chen, Q. & Möttönen, M · 2024
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Automated analysis of single-tone spectroscopic data for cQED systems
Fedorov, G. P. & Ustinov, A. V · 2058
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