Scheme for parity-controlled multi-qubit gates with superconducting
qubits
- URL: http://arxiv.org/abs/2302.00719v2
- Date: Mon, 10 Apr 2023 09:05:51 GMT
- Title: Scheme for parity-controlled multi-qubit gates with superconducting
qubits
- Authors: Kasper Sangild Christensen, Nikolaj Thomas Zinner, Morten Kjaergaard
- Abstract summary: We propose a superconducting circuit device with native support for multi-qubit parity-controlled gates (PCG)
PCGs are gates that perform rotations on a parity ancilla based on the multi-qubit parity operator of adjacent qubits.
We find that the device can perform four-qubit PCGs in 30 ns with process fidelity surpassing 99%.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Multi-qubit parity measurements are at the core of many quantum error
correction schemes. Extracting multi-qubit parity information typically
involves using a sequence of multiple two-qubit gates. In this paper, we
propose a superconducting circuit device with native support for multi-qubit
parity-controlled gates (PCG). These are gates that perform rotations on a
parity ancilla based on the multi-qubit parity operator of adjacent qubits, and
can be directly used to perform multi-qubit parity measurements. The circuit
consists of a set of concatenated Josephson ring modulators and effectively
realizes a set of transmon-like qubits with strong longitudinal
nearest-neighbor couplings. PCGs are implemented by applying microwave drives
to the parity ancilla at specific frequencies. We investigate the scheme's
performance with numerical simulation using realistic parameter choices and
decoherence rates, and find that the device can perform four-qubit PCGs in 30
ns with process fidelity surpassing 99%. Furthermore, we study the effects of
parameter disorder and spurious coupling between next-nearest neighboring
qubits. Our results indicate that this approach to realizing PCGs constitute an
interesting candidate for near-term quantum error correction experiments.
Related papers
- Realization of two-qubit gates and multi-body entanglement states in an asymmetric superconducting circuits [3.9488862168263412]
We propose a tunable fluxonium-transmon-transmon (FTT) cou pling scheme.
The asymmetric structure composed of fluxonium and transmon will optimize the frequency space and form a high fidelity two-qubit quantum gate.
We study the performance of this scheme by simulating the general single-qubit Xpi/2 gate and two-qubit (iSWAP) gate.
arXiv Detail & Related papers (2024-04-12T08:44:21Z) - Three-qubit Parity Gate via Simultaneous Cross Resonance Drives [0.0]
We show an efficient implementation of a three-qubit parity gate on two control qubits with a common target.
We also demonstrate that our simultaneous parity gates can significantly improve the parity measurement error probability for the heavy-hexagon code on an IBM Quantum processor.
arXiv Detail & Related papers (2023-09-20T13:13:00Z) - Two qubits in one transmon -- QEC without ancilla hardware [68.8204255655161]
We show that it is theoretically possible to use higher energy levels for storing and controlling two qubits within a superconducting transmon.
The additional qubits could be used in algorithms which need many short-living qubits in error correction or by embedding effecitve higher connectivity in qubit networks.
arXiv Detail & Related papers (2023-02-28T16:18:00Z) - Coupler microwave-activated controlled phase gate on fluxonium qubits [32.73124984242397]
A tunable coupler typically includes a nonlinear element, such as a SQUID, which is used to tune the resonance frequency of an LC circuit connecting two qubits.
Here we propose a complimentary approach where instead of tuning the resonance frequency of the tunable coupler by applying a quasistatic control signal, we excite by microwave the degree of freedom associated with the coupler itself.
arXiv Detail & Related papers (2023-02-20T07:51:04Z) - Controlled-Controlled-Phase Gates for Superconducting Qubits Mediated by
a Shared Tunable Coupler [0.0]
We investigate a system of three superconducting transmon-type qubits coupled via a single flux-tunable coupler.
tuning the frequency of the coupler by adiabatic flux pulses enables us to control the conditional energy shifts between the qubits.
Numerical simulations result in fidelities around 99 % and gate times below 300 ns.
arXiv Detail & Related papers (2022-06-24T17:47:11Z) - Extensible circuit-QED architecture via amplitude- and
frequency-variable microwaves [52.77024349608834]
We introduce a circuit-QED architecture combining fixed-frequency qubits and microwave-driven couplers.
Drive parameters appear as tunable knobs enabling selective two-qubit coupling and coherent-error suppression.
arXiv Detail & Related papers (2022-04-17T22:49:56Z) - 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) - Effective non-local parity-dependent couplings in qubit chains [0.0]
We harness the simultaneous coupling of qubits on a chain and engineer a set of non-local parity-dependent quantum operations.
The resulting effective long-range couplings directly implement a parametrizable Trotter-step for Jordan-Wigner fermions.
We present numerical simulations of the gate operation in a superconducting quantum circuit architecture.
arXiv Detail & Related papers (2022-03-14T17:33:40Z) - Accurate methods for the analysis of strong-drive effects in parametric
gates [94.70553167084388]
We show how to efficiently extract gate parameters using exact numerics and a perturbative analytical approach.
We identify optimal regimes of operation for different types of gates including $i$SWAP, controlled-Z, and CNOT.
arXiv Detail & Related papers (2021-07-06T02:02:54Z) - Composably secure data processing for Gaussian-modulated continuous
variable quantum key distribution [58.720142291102135]
Continuous-variable quantum key distribution (QKD) employs the quadratures of a bosonic mode to establish a secret key between two remote parties.
We consider a protocol with homodyne detection in the general setting of composable finite-size security.
In particular, we analyze the high signal-to-noise regime which requires the use of high-rate (non-binary) low-density parity check codes.
arXiv Detail & Related papers (2021-03-30T18:02:55Z) - Efficient and robust certification of genuine multipartite entanglement
in noisy quantum error correction circuits [58.720142291102135]
We introduce a conditional witnessing technique to certify genuine multipartite entanglement (GME)
We prove that the detection of entanglement in a linear number of bipartitions by a number of measurements scales linearly, suffices to certify GME.
We apply our method to the noisy readout of stabilizer operators of the distance-three topological color code and its flag-based fault-tolerant version.
arXiv Detail & Related papers (2020-10-06T18:00:07Z)
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.