English

Temporal Diffraction Grating for Engineered Superconducting Qubit Dissipation

Quantum Physics 2026-07-20 v1

Abstract

Parametric frequency modulation is a standard tool in superconducting circuits for activating tunable interactions and implementing quantum gates. Here, we engineer dissipation in a flux-tunable transmon qubit by using sideband modulation to bring it into resonance with a lossy resonator, opening an on-demand Purcell decay channel. We find that pulsing this channel on and off does not simply lower the time-averaged decay rate; instead, it reorganizes the dissipation spectrum into a structured interference pattern. A Chebyshev-propagator model for the repeated on/off block reproduces the measured spectra and reveals a close structural correspondence to N-slit Fraunhofer diffraction, with each on-window acting as a temporal aperture. By varying the pulse duration and duty cycle, we demonstrate control over the spacing, contrast, and envelope of the dissipation spectrum. These results establish pulsed parametric modulation as a direct method for shaping engineered dissipation in superconducting circuits and provide a new control knob for open quantum system dynamics.

Cite

@article{arxiv.2607.17562,
  title  = {Temporal Diffraction Grating for Engineered Superconducting Qubit Dissipation},
  author = {Pratik J. Barge and Kater W. Murch},
  journal= {arXiv preprint arXiv:2607.17562},
  year   = {2026}
}

Comments

10 pages, 4 figures