Universal quantum computation with symmetric qubit clusters coupled to
an environment
- URL: http://arxiv.org/abs/2106.00754v3
- Date: Sat, 17 Dec 2022 16:45:08 GMT
- Title: Universal quantum computation with symmetric qubit clusters coupled to
an environment
- Authors: Christian Boudreault, Hichem Eleuch, Michael Hilke, Richard MacKenzie
- Abstract summary: We propose a scalable scheme for universal quantum computation where cores play the role of quantum-computational transistors, quansistors.
We include quantum errors as a main source of decoherence, and show that symmetry makes logical operations particularly resilient to untimely anisotropic qubit rotations.
Many of our results can be generalized to higher-level omega-rotation-invariant systems, or adapted to clusters with other symmetries.
- Score: 0.3670422696827526
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: One of the most challenging problems for the realization of a scalable
quantum computer is to design a physical device that keeps the error rate for
each quantum processing operation low. These errors can originate from the
accuracy of quantum manipulation, such as the sweeping of a gate voltage in
solid state qubits or the duration of a laser pulse in optical schemes. Errors
also result from decoherence, which is often regarded as more crucial in the
sense that it is inherent to the quantum system, being fundamentally a
consequence of the coupling to the external environment.
Grouping small collections of qubits into clusters with symmetries can
protect parts of the calculation from decoherence. We use 4-level cores with a
straightforward generalization of discrete rotational symmetry, omega-rotation
invariance, to encode pairs of coupled qubits and universal 2-qubit logical
gates. We include quantum errors as a main source of decoherence, and show that
symmetry makes logical operations particularly resilient to untimely
anisotropic qubit rotations. We propose a scalable scheme for universal quantum
computation where cores play the role of quantum-computational transistors,
quansistors.
Initialization and readout are achieved by coupling to leads. The external
leads are explicitly considered and are assumed to be the other main source of
decoherence. We show that quansistors can be dynamically decoupled from the
leads by tuning their internal parameters, giving them the versatility required
to act as controllable quantum memory units. With this dynamical decoupling,
logical operations within quansistors are also symmetry-protected from unbiased
noise in their parameters. We identify technologies that could implement
omega-rotation invariance. Many of our results can be generalized to
higher-level omega-rotation-invariant systems, or adapted to clusters with
other symmetries.
Related papers
- Syncopated Dynamical Decoupling for Suppressing Crosstalk in Quantum
Circuits [12.29963230632145]
We study the use of dynamical decoupling in characterizing undesired two-qubit couplings and the underlying single-qubit decoherence.
We develop a syncopated decoupling technique which protects against decoherence and selectively targets unwanted two-qubit interactions.
arXiv Detail & Related papers (2024-03-12T17:18:35Z) - Scalable multi-qubit intrinsic gates in quantum dot arrays [0.0]
The intrinsic quantum gates refer to the class of natural-forming transformations in the qubit rotating-frame under direct exchange coupling.
We develop a general formalism for identifying the multi-qubit intrinsic gates under arbitrary array connectivity.
The applications of the intrinsic gates in quantum computing and quantum error correction are explored.
arXiv Detail & Related papers (2024-03-11T16:49:56Z) - Qubits on programmable geometries with a trapped-ion quantum processor [2.0295982805787776]
We develop a class of high-dimensional Ising interactions using a linear one-dimensional (1D) ion chain with up to 8 qubits through stroboscopic sequences of commuting Hamiltonians.
We extend this method to non-commuting circuits and demonstrate the quantum XY and Heisenberg models using Floquet periodic drives with tunable symmetries.
arXiv Detail & Related papers (2023-08-20T07:01:57Z) - Quantum process tomography of continuous-variable gates using coherent
states [49.299443295581064]
We demonstrate the use of coherent-state quantum process tomography (csQPT) for a bosonic-mode superconducting circuit.
We show results for this method by characterizing a logical quantum gate constructed using displacement and SNAP operations on an encoded qubit.
arXiv Detail & Related papers (2023-03-02T18:08:08Z) - Modelling semiconductor spin qubits and their charge noise environment
for quantum gate fidelity estimation [0.9406493726662083]
The spin of an electron confined in semiconductor quantum dots is a promising candidate for quantum bit (qubit) implementations.
We present here a co-modelling framework for double quantum dot (DQD) devices and their charge noise environment.
We find an inverse correlation between quantum gate errors and quantum dot confinement.
arXiv Detail & Related papers (2022-10-10T10:12:54Z) - Noisy Quantum Kernel Machines [58.09028887465797]
An emerging class of quantum learning machines is that based on the paradigm of quantum kernels.
We study how dissipation and decoherence affect their performance.
We show that decoherence and dissipation can be seen as an implicit regularization for the quantum kernel machines.
arXiv Detail & Related papers (2022-04-26T09:52:02Z) - Analytical and experimental study of center line miscalibrations in M\o
lmer-S\o rensen gates [51.93099889384597]
We study a systematic perturbative expansion in miscalibrated parameters of the Molmer-Sorensen entangling gate.
We compute the gate evolution operator which allows us to obtain relevant key properties.
We verify the predictions from our model by benchmarking them against measurements in a trapped-ion quantum processor.
arXiv Detail & Related papers (2021-12-10T10:56:16Z) - Interactive Protocols for Classically-Verifiable Quantum Advantage [46.093185827838035]
"Interactions" between a prover and a verifier can bridge the gap between verifiability and implementation.
We demonstrate the first implementation of an interactive quantum advantage protocol, using an ion trap quantum computer.
arXiv Detail & Related papers (2021-12-09T19:00:00Z) - Numerical hardware-efficient variational quantum simulation of a soliton
solution [0.0]
We discuss the capabilities of quantum algorithms with special attention paid to a hardware-efficient variational eigensolver.
A delicate interplay between magnetic interactions allows one to stabilize a chiral state that destroys the homogeneity of magnetic ordering.
We argue that, while being capable of correctly reproducing a uniform magnetic configuration, the hardware-efficient ansatz meets difficulties in providing a detailed description to a noncollinear magnetic structure.
arXiv Detail & Related papers (2021-05-13T11:58:18Z) - Information Scrambling in Computationally Complex Quantum Circuits [56.22772134614514]
We experimentally investigate the dynamics of quantum scrambling on a 53-qubit quantum processor.
We show that while operator spreading is captured by an efficient classical model, operator entanglement requires exponentially scaled computational resources to simulate.
arXiv Detail & Related papers (2021-01-21T22:18:49Z) - Simulating nonnative cubic interactions on noisy quantum machines [65.38483184536494]
We show that quantum processors can be programmed to efficiently simulate dynamics that are not native to the hardware.
On noisy devices without error correction, we show that simulation results are significantly improved when the quantum program is compiled using modular gates.
arXiv Detail & Related papers (2020-04-15T05:16:24Z)
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.