Designing Filter Functions of Frequency-Modulated Pulses for
High-Fidelity Two-Qubit Gates in Ion Chains
- URL: http://arxiv.org/abs/2206.10850v2
- Date: Thu, 5 Jan 2023 16:04:50 GMT
- Title: Designing Filter Functions of Frequency-Modulated Pulses for
High-Fidelity Two-Qubit Gates in Ion Chains
- Authors: Mingyu Kang, Ye Wang, Chao Fang, Bichen Zhang, Omid Khosravani,
Jungsang Kim, Kenneth R. Brown
- Abstract summary: We develop filter functions for Molmer-Sorensen gates of trapped-ion quantum computers.
We measure the noise spectrum of the motional modes and use it for designing the filter functions.
- Score: 3.2467045800438448
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: High-fidelity two-qubit gates in quantum computers are often hampered by
fluctuating experimental parameters. The effects of time-varying parameter
fluctuations lead to coherent noise on the qubits, which can be suppressed by
designing control signals with appropriate filter functions. Here, we develop
filter functions for M{\o}lmer-S{\o}rensen gates of trapped-ion quantum
computers that accurately predict the change in gate error due to small
parameter fluctuations at any frequency. We then design the filter functions of
frequency-modulated laser pulses, and compare this method with pulses that are
robust to static offsets of the motional-mode frequencies. Experimentally, we
measure the noise spectrum of the motional modes and use it for designing the
filter functions, which improves the gate fidelity from 99.23(7)% to 99.55(7)%
in a five-ion chain.
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