High-Fidelity Measurement of a Superconducting Qubit Using an On-Chip Microwave Photon Counter
A. Opremcak, C. H. Liu, C. Wilen, K. Okubo, B. G. Christensen, D. Sank, T. C. White, A. Vainsencher, M. Giustina, A. Megrant, B. Burkett, B. L. T. Plourde, R. McDermott
DOI 10.1103/PhysRevX.11.011027 · Physical Review X
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
We describe an approach to the high-fidelity measurement of a superconducting qubit using an on-chip microwave photon counter. The protocol relies on the transient response of a dispersively coupled measurement resonator to map the state of the qubit to “bright” and “dark” cavity pointer states that are characterized by a large differential photon occupation. Following this mapping, we photodetect the resonator using the Josephson photomultiplier, which transitions between classically distinguishable flux states when cavity photon occupation exceeds a certain threshold. Our technique provides access to the binary outcome of projective quantum measurement at the millikelvin stage without the need for quantum-limited preamplification and thresholding at room temperature. We achieve raw single-shot measurement fidelity in excess of 98% across multiple samples using this approach in total measurement times under 500 ns. In addition, we show that the backaction and crosstalk associated with our measurement protocol can be mitigated by exploiting the intrinsic damping of the Josephson photomultiplier itself.
Similar papers
Fast high-fidelity quantum nondemolition readout of a superconducting qubit with tunable transverse couplings
similarity 0.91Bryan T. Gard et al.
Source status unknown — claims are unverified
Fast Accurate State Measurement with Superconducting Qubits
similarity 0.90Evan Jeffrey et al.
Source status unknown — claims are unverified
Interaction-Free Measurements with Superconducting Qubits
similarity 0.90G. S. Paraoanu
Source status unknown — claims are unverified
State Readout of a Trapped Ion Qubit Using a Trap-Integrated Superconducting Photon Detector
similarity 0.90S. L. Todaro et al.
Source status unknown — claims are unverified
Stabilizer Quantum Error Correction Toolbox for Superconducting Qubits
similarity 0.89Simon E. Nigg & S. M. Girvin
Source status unknown — claims are unverified
Efficient single-photon frequency conversion in the microwave domain using superconducting quantum circuits
similarity 0.88W. Z. Jia et al.
Source status unknown — claims are unverified