AI Article Synopsis

  • Qubit initialization is crucial in quantum computing, and traditional methods face issues like slow feedback, crosstalk, and complex calibration.* -
  • The new method presented achieves fast and accurate qubit resets by modulating the flux in a transmon qubit, reducing excited state population to only 0.08% in 34 ns.* -
  • This technique allows for effective second excited state depletion, has minimal impact on nearby qubits, and enables entanglement with single photons, making it beneficial for quantum communication.*

Article Abstract

Qubit initialization is a critical task in quantum computation and communication. Extensive efforts have been made to achieve this with high speed, efficiency and scalability. However, previous approaches have either been measurement-based and required fast feedback, suffered from crosstalk or required sophisticated calibration. Here, we report a fast and high-fidelity reset scheme, avoiding the issues above without any additional chip architecture. By modulating the flux through a transmon qubit, we realize a swap between the qubit and its readout resonator that suppresses the excited state population to 0.08% ± 0.08% within 34 ns (284 ns if photon depletion of the resonator is required). Furthermore, our approach (i) can achieve effective second excited state depletion, (ii) has negligible effects on neighboring qubits, and (iii) offers a way to entangle the qubit with an itinerant single photon, useful in quantum communication applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8505451PMC
http://dx.doi.org/10.1038/s41467-021-26205-yDOI Listing

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