Sub-GHz resolution line-by-line pulse shaper for driving superconducting circuits

Author:

Lee Dahyeon12ORCID,Nakamura Takuma12ORCID,Metcalf Andrew J.3ORCID,Flowers-Jacobs Nathan E.4ORCID,Fox Anna E.4ORCID,Dresselhaus Paul D.4ORCID,Quinlan Franklyn25ORCID

Affiliation:

1. Department of Physics, University of Colorado Boulder 1 , Boulder, Colorado 80309, USA

2. Time and Frequency Division, National Institute of Standards and Technology 2 , Boulder, Colorado 80305, USA

3. Space Vehicles Directorate, Air Force Research Laboratory 3 , Kirtland AFB, New Mexico 87117, USA

4. RF Technology Division, National Institute of Standards and Technology 4 , Boulder, Colorado 80305, USA

5. Electrical, Computer and Energy Engineering, University of Colorado 5 , Boulder, Colorado 80309, USA

Abstract

We demonstrate a sub-GHz resolution, fully programmable Fourier-domain pulse shaper capable of generating arbitrary optical pulse patterns for superconducting circuit platforms. This high resolution allows line-by-line pulse shaping of a 1 GHz-spaced comb, and the pulse shaper can accommodate an optical bandwidth as large as 1 THz, which represents the highest resolution programmable line-by-line pulse shaping to our knowledge. Linear optical sampling with a dual-comb system confirms independent control of 1 GHz-spaced optical lines, and the low phase noise of the pulse shaper is characterized. We apply the pulse shaper as an optical drive for an array of Josephson junctions operating at a temperature of 4 K, where cryogenic photodetection of pulse doublets with user-defined separation characterizes the Josephson junction response. Furthermore, we demonstrate a pulse-density modulation pattern of 4 ps duration optical pulses that can serve as the high bandwidth drive of a quantum-based Josephson arbitrary waveform synthesizer. By leveraging the exquisite control, large bandwidth, and low noise of photonics, this represents an important advance toward the realization of high power and high spectral purity AC voltage standards at gigahertz frequencies without requiring 100 GHz bandwidth driving electronics.

Funder

National Institute of Standards and Technology

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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