Low Temperature Physics, volume 43, issue 7, pages 789-798

Flux qubit interaction with rapid single-flux quantum logic circuits: Control and readout

N V Klenov 1, 2, 3, 4
A. V. Kuznetsov 5
I I Soloviev 6, 7
S V Bakurskiy 6, 7
M. V. Denisenko 8
A M Satanin 8
Publication typeJournal Article
Publication date2017-07-01
scimago Q3
SJR0.225
CiteScore1.2
Impact factor0.6
ISSN1063777X, 10906517
General Physics and Astronomy
Physics and Astronomy (miscellaneous)
Abstract

We present the results of an analytical study and numerical simulation of the dynamics of a superconducting three-Josephson-junction (3JJ) flux qubit magnetically coupled with rapid single-flux quantum (RSFQ) logic circuit, which demonstrate the fundamental possibility of implementing the simplest logic operations at picosecond times, as well as rapid non-destructive readout. It is shown that when solving optimization problems, the qubit dynamics can be conveniently interpreted as a precession of the magnetic moment vector around the direction of the magnetic field. In this case, the role of magnetic field components is played by combinations of the Hamiltonian matrix elements, and the role of the magnetic moment is played by the Bloch vector. Features of the 3JJ qubit model are discussed during the analysis of how the qubit is affected by exposure to a short control pulse, as are the similarities between the Bloch and Landau-Lifshitz-Gilbert equations. An analysis of solutions to the Bloch equations made it possible to develop recommendations for the use of readout RSFQ circuits in implementing an optimal interface between the classical and quantum parts of the computer system, as well as to justify the use of single-quantum logic in order to control superconducting quantum circuits on a chip.

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