Realization of High-Fidelity CZ Gate based on a Double-Transmon Coupler
- URL: http://arxiv.org/abs/2402.18926v3
- Date: Tue, 26 Nov 2024 03:59:58 GMT
- Title: Realization of High-Fidelity CZ Gate based on a Double-Transmon Coupler
- Authors: Rui Li, Kentaro Kubo, Yinghao Ho, Zhiguang Yan, Yasunobu Nakamura, Hayato Goto,
- Abstract summary: Double-transmon coupler (DTC) aims to achieve both suppressed residual interaction and a fast high-fidelity two-qubit gate simultaneously.
We harness the state-of-the-art fabrication techniques and a model-free pulse-optimization process based on reinforcement learning.
The performance of the DTC scheme demonstrates its potential as a competitive building block for superconducting quantum processors.
- Score: 1.4426921903884633
- License:
- Abstract: Striving for higher gate fidelity is crucial not only for enhancing existing noisy intermediate-scale quantum (NISQ) devices but also for unleashing the potential of fault-tolerant quantum computation through quantum error correction. A recently proposed theoretical scheme, the double-transmon coupler (DTC), aims to achieve both suppressed residual interaction and a fast high-fidelity two-qubit gate simultaneously, particularly for highly detuned qubits. Harnessing the state-of-the-art fabrication techniques and a model-free pulse-optimization process based on reinforcement learning, we translate the theoretical DTC scheme into reality, attaining fidelities of 99.90% for a CZ gate and 99.98% for single-qubit gates. The performance of the DTC scheme demonstrates its potential as a competitive building block for superconducting quantum processors.
Related papers
- Near-Term Distributed Quantum Computation using Mean-Field Corrections
and Auxiliary Qubits [77.04894470683776]
We propose near-term distributed quantum computing that involve limited information transfer and conservative entanglement production.
We build upon these concepts to produce an approximate circuit-cutting technique for the fragmented pre-training of variational quantum algorithms.
arXiv Detail & Related papers (2023-09-11T18:00:00Z) - High-fidelity transmon coupler activated CCZ gate on fluxonium qubits [0.0]
We propose a novel way to perform a high-fidelity CCZ gate on fluxoniums capacitively connected via a transmon qubit, activated by a microwave pulse on the coupler.
We provide numerical simulation of 95-ns long gate of higher than 99.99% fidelity with realistic circuit parameters in the noiseless model and estimate an error of about 0.25% under the conventional decoherence rates.
arXiv Detail & Related papers (2023-08-29T11:36:19Z) - Quantum Gate Optimization for Rydberg Architectures in the Weak-Coupling
Limit [55.05109484230879]
We demonstrate machine learning assisted design of a two-qubit gate in a Rydberg tweezer system.
We generate optimal pulse sequences that implement a CNOT gate with high fidelity.
We show that local control of single qubit operations is sufficient for performing quantum computation on a large array of atoms.
arXiv Detail & Related papers (2023-06-14T18:24:51Z) - Fast and Robust Geometric Two-Qubit Gates for Superconducting Qubits and
beyond [0.0]
We propose a scheme to realize robust geometric two-qubit gates in multi-level qubit systems.
Our scheme is substantially simpler than STIRAP-based gates that have been proposed for atomic platforms.
We show how our gate can be accelerated using a shortcuts-to-adiabaticity approach.
arXiv Detail & Related papers (2022-08-08T16:22:24Z) - High fidelity two-qubit gates on fluxoniums using a tunable coupler [47.187609203210705]
Superconducting fluxonium qubits provide a promising alternative to transmons on the path toward large-scale quantum computing.
A major challenge for multi-qubit fluxonium devices is the experimental demonstration of a scalable crosstalk-free multi-qubit architecture.
Here, we present a two-qubit fluxonium-based quantum processor with a tunable coupler element.
arXiv Detail & Related papers (2022-03-30T13:44:52Z) - Robust Nonadiabatic Holonomic Quantum Gates on Decoherence-Protected
Qubits [4.18804572788063]
We propose a scheme for quantum manipulation by combining the geometric phase approach with the dynamical correction technique.
Our scheme is implemented on the superconducting circuits, which also simplifies previous implementations.
arXiv Detail & Related papers (2021-10-06T14:39:52Z) - Realization of arbitrary doubly-controlled quantum phase gates [62.997667081978825]
We introduce a high-fidelity gate set inspired by a proposal for near-term quantum advantage in optimization problems.
By orchestrating coherent, multi-level control over three transmon qutrits, we synthesize a family of deterministic, continuous-angle quantum phase gates acting in the natural three-qubit computational basis.
arXiv Detail & Related papers (2021-08-03T17:49:09Z) - Coupler-Assisted Controlled-Phase Gate with Enhanced Adiabaticity [1.9476527809254969]
High-fidelity two-qubit entangling gates are essential building blocks for fault-tolerant quantum computers.
We present a theoretical study, explaining the origin of the high-contrast ZZ interaction.
We expect the scheme to potentially achieve a two-qubit gate error rate near $10-5$, which would drastically speed up the progress towards fault-tolerant quantum computation.
arXiv Detail & Related papers (2021-06-01T18:50:17Z) - Direct Quantum Communications in the Presence of Realistic Noisy
Entanglement [69.25543534545538]
We propose a novel quantum communication scheme relying on realistic noisy pre-shared entanglement.
Our performance analysis shows that the proposed scheme offers competitive QBER, yield, and goodput.
arXiv Detail & Related papers (2020-12-22T13:06:12Z) - High-fidelity, high-scalability two-qubit gate scheme for
superconducting qubits [16.01171409402694]
We experimentally demonstrate a new two-qubit gate scheme that exploits fixed-frequency qubits and a tunable coupler in a superconducting quantum circuit.
The scheme requires less control lines, reduces crosstalk effect, simplifies calibration procedures, yet produces a controlled-Z gate in 30ns with a high fidelity of 99.5%.
Our demonstration paves the way for large-scale implementation of high-fidelity quantum operations.
arXiv Detail & Related papers (2020-06-21T17:55:28Z) - Universal non-adiabatic control of small-gap superconducting qubits [47.187609203210705]
We introduce a superconducting composite qubit formed from two capacitively coupled transmon qubits.
We control this low-frequency CQB using solely baseband pulses, non-adiabatic transitions, and coherent Landau-Zener interference.
This work demonstrates that universal non-adiabatic control of low-frequency qubits is feasible using solely baseband pulses.
arXiv Detail & Related papers (2020-03-29T22:48:34Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.