Double Upconversion for Superconducting Qubit Control realised using
Microstrip Filters
- URL: http://arxiv.org/abs/2210.09498v1
- Date: Tue, 18 Oct 2022 00:39:10 GMT
- Title: Double Upconversion for Superconducting Qubit Control realised using
Microstrip Filters
- Authors: Jonathan Dearlove, Prasanna Pakkiam, Arkady Fedorov
- Abstract summary: Superconducting qubits provide a promising platform for physically realising quantum computers at scale.
Such devices require precision control at microwave frequencies.
Common practice is toe such control signals using IQ modulation, requiring calibration of a in-phase (I) and quadrature (Q) signals alongside two DC offsets to generate pure tones.
This paper presents an economic physical implementation of an alternative method referred to as double upconversion which requires considerably less hardware calibration and physical resources to operate a qubit.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Superconducting qubits provide a promising platform for physically realising
quantum computers at scale. Such devices require precision control at microwave
frequencies. Common practice is to synthesise such control signals using IQ
modulation, requiring calibration of a in-phase (I) and quadrature (Q) signals
alongside two DC offsets to generate pure tones. This paper presents an
economic physical implementation of an alternative method referred to as double
upconversion which requires considerably less hardware calibration and physical
resources to operate a qubit. A physical circuit was created using standard PCB
design techniques for microstrip filters and two common RF mixers. This circuit
was then utilised to successfully control a superconducting transmon qubit.
When using proper RF shielding, qubit tones were demonstrated with over 70dB of
spurious-free dynamic range across the entire operational spectrum of a
transmon qubit.
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