TY - JOUR
T1 - Tunable, Flexible, and Efficient Optimization of Control Pulses for Practical Qubits
AU - Machnes, Shai
AU - Assemat, Elie
AU - Tannor, David
AU - Wilhelm, Frank K.
N1 - S. M. and F. K. W. acknowledge funding from the Intelligence Advanced Research Projects Activity (IARPA) through the LogiQ Grant No. W911NF-16-1-0114. E. A. acknowledges support from the Alexander von Humboldt Foundation. D. J. T. acknowledges support from the Israel Science Foundation (Grant No. 1094/16) and the German-Israel Foundation for Scientific Research and Development (GIF). F. K. W. acknowledges support from the European Union through the SCALEQIT Project.
PY - 2018/4/13
Y1 - 2018/4/13
N2 - Quantum computation places very stringent demands on gate fidelities, and experimental implementations require both the controls and the resultant dynamics to conform to hardware-specific constraints. Superconducting qubits present the additional requirement that pulses must have simple parameterizations, so they can be further calibrated in the experiment, to compensate for uncertainties in system parameters. Other quantum technologies, such as sensing, require extremely high fidelities. We present a novel, conceptually simple and easy-to-implement gradient-based optimal control technique named gradient optimization of analytic controls (GOAT), which satisfies all the above requirements, unlike previous approaches. To demonstrate GOAT's capabilities, with emphasis on flexibility and ease of subsequent calibration, we optimize fast coherence-limited pulses for two leading superconducting qubits architectures-flux-tunable transmons and fixed-frequency transmons with tunable couplers.
AB - Quantum computation places very stringent demands on gate fidelities, and experimental implementations require both the controls and the resultant dynamics to conform to hardware-specific constraints. Superconducting qubits present the additional requirement that pulses must have simple parameterizations, so they can be further calibrated in the experiment, to compensate for uncertainties in system parameters. Other quantum technologies, such as sensing, require extremely high fidelities. We present a novel, conceptually simple and easy-to-implement gradient-based optimal control technique named gradient optimization of analytic controls (GOAT), which satisfies all the above requirements, unlike previous approaches. To demonstrate GOAT's capabilities, with emphasis on flexibility and ease of subsequent calibration, we optimize fast coherence-limited pulses for two leading superconducting qubits architectures-flux-tunable transmons and fixed-frequency transmons with tunable couplers.
UR - https://www.scopus.com/pages/publications/85045334428
U2 - 10.1103/PhysRevLett.120.150401
DO - 10.1103/PhysRevLett.120.150401
M3 - Article
SN - 0031-9007
VL - 120
JO - Physical review letters
JF - Physical review letters
IS - 15
M1 - 150401
ER -