ZZ-Interaction-Free Single-Qubit-Gate Optimization in Superconducting Qubits

Fuente: arXiv
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Main Authors: Watanabe, Shu, Tabuchi, Yutaka, Heya, Kentaro, Tamate, Shuhei, Nakamura, Yasunobu
Format: Preprint
Published: 2023
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author Watanabe, Shu
Tabuchi, Yutaka
Heya, Kentaro
Tamate, Shuhei
Nakamura, Yasunobu
author_facet Watanabe, Shu
Tabuchi, Yutaka
Heya, Kentaro
Tamate, Shuhei
Nakamura, Yasunobu
contents Overcoming the issue of qubit-frequency fluctuations is essential to realize stable and practical quantum computing with solid-state qubits. Static ZZ interaction, which causes a frequency shift of a qubit depending on the state of neighboring qubits, is one of the major obstacles to integrating fixed-frequency transmon qubits. Here we propose and experimentally demonstrate ZZ-interaction-free single-qubit-gate operations on a superconducting transmon qubit by utilizing a semi-analytically optimized pulse based on a perturbative analysis. The gate is designed to be robust against slow qubit-frequency fluctuations. The robustness of the optimized gate spans a few MHz, which is sufficient for suppressing the adverse effects of the ZZ interaction. Our result paves the way for an efficient approach to overcoming the issue of ZZ interaction without any additional hardware overhead.
format Preprint
id arxiv_https___arxiv_org_abs_2309_13927
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle ZZ-Interaction-Free Single-Qubit-Gate Optimization in Superconducting Qubits
Watanabe, Shu
Tabuchi, Yutaka
Heya, Kentaro
Tamate, Shuhei
Nakamura, Yasunobu
Quantum Physics
Overcoming the issue of qubit-frequency fluctuations is essential to realize stable and practical quantum computing with solid-state qubits. Static ZZ interaction, which causes a frequency shift of a qubit depending on the state of neighboring qubits, is one of the major obstacles to integrating fixed-frequency transmon qubits. Here we propose and experimentally demonstrate ZZ-interaction-free single-qubit-gate operations on a superconducting transmon qubit by utilizing a semi-analytically optimized pulse based on a perturbative analysis. The gate is designed to be robust against slow qubit-frequency fluctuations. The robustness of the optimized gate spans a few MHz, which is sufficient for suppressing the adverse effects of the ZZ interaction. Our result paves the way for an efficient approach to overcoming the issue of ZZ interaction without any additional hardware overhead.
title ZZ-Interaction-Free Single-Qubit-Gate Optimization in Superconducting Qubits
topic Quantum Physics
url https://arxiv.org/abs/2309.13927