Superconducting quantum interference device with frequency-dependent damping: Readout of flux qubits
T. L. Robertson, B. L. T. Plourde, T. Hime, S. Linzen, P. A. Reichardt, F. K. Wilhelm, John Clarke
DOI 10.1103/PhysRevB.72.024513 · Physical Review B
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
Recent experiments on superconducting flux qubits, consisting of a superconducting loop interrupted by Josephson junctions, have demonstrated quantum coherence between two different quantum states. The state of the qubit is measured with a superconducting quantum interference device (SQUID). Such measurements require the SQUID to have high resolution while exerting minimal backaction on the qubit. By designing shunts across the SQUID junctions appropriately, one can improve the measurement resolution without increasing the backaction significantly. Using a path-integral approach to analyze the Caldeira-Leggett model, we calculate the narrowing of the distribution of the switching events from the zero-voltage state of the SQUID for arbitrary shunt admittances, focusing on shunts consisting of a capacitance Cs and resistance Rs in series. To test this model, we fabricated a dc SQUID in which each junction is shunted with a thin-film interdigitated capacitor in series with a resistor, and measured the switching distribution as a function of temperature and applied magnetic flux. After accounting for the damping due to the SQUID leads, we found good agreement between the measured escape rates and the predictions of our model. We analyze the backaction of a shunted symmetric SQUID on a flux qubit. For the given parameters of our SQUID and realistic parameters for a flux qubit, at the degeneracy point we find a relaxation time of 113μs, which limits the decoherence time to 226μs. Based on our analysis of the escape process, we determine that a SQUID with purely capacitive shunts should have narrow switching distributions and no dissipation.
Similar papers
Decoherence in rf SQUID Qubits
similarity 0.91Douglas A. Bennett et al. · 2008 · arXiv:0811.2268
Source status unknown — claims are unverified
Measurement of the effective dissipation in an rf SQUID system
similarity 0.89B. Ruggiero et al.
Source status unknown — claims are unverified
Quantum superpositions of clockwise and counterclockwise supercurrent states in the dynamics of an rf-SQUID exposed to a quantized electromagnetic field
similarity 0.88R. Migliore & A. Messina
Source status unknown — claims are unverified
Relaxation and decoherence in a resonantly driven qubit
similarity 0.88Zhongyuan Zhou et al. · 2006 · arXiv:cond-mat/0604191
Source status unknown — claims are unverified
Spectral densities of superconducting qubits with environmental resonances
similarity 0.88Kaushik Mitra et al. · 2008 · arXiv:0805.2419
Source status unknown — claims are unverified
Elimination of thermal bistability in superconducting weak links by an inductive shunt
similarity 0.88Sourav Biswas et al. · 2018 · arXiv:1807.07720
Source status unknown — claims are unverified