Nonadiabatic geometric quantum computation with optimal control on
superconducting circuits
- URL: http://arxiv.org/abs/2004.10199v2
- Date: Tue, 14 Jul 2020 00:29:57 GMT
- Title: Nonadiabatic geometric quantum computation with optimal control on
superconducting circuits
- Authors: Jing Xu, Sai Li, Tao Chen, and Zheng-Yuan Xue
- Abstract summary: We propose a nonadiabatic geometric quantum computation scheme on superconducting circuits.
Our scheme provides a promising step towards fault-tolerant solid-state quantum computation.
- Score: 7.703593898562321
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Quantum gates, which are the essential building blocks of quantum computers,
are very fragile. Thus, to realize robust quantum gates with high fidelity is
the ultimate goal of quantum manipulation. Here, we propose a nonadiabatic
geometric quantum computation scheme on superconducting circuits to engineer
arbitrary quantum gates, which share both the robust merit of geometric phases
and the capacity to combine with optimal control technique to further enhance
the gate robustness. Specifically, in our proposal, arbitrary geometric
single-qubit gates can be realized on a transmon qubit, by a resonant microwave
field driving, with both the amplitude and phase of the driving being
time-dependent. Meanwhile, nontrivial two-qubit geometric gates can be
implemented by two capacitively coupled transmon qubits, with one of the
transmon qubits' frequency being modulated to obtain effective resonant
coupling between them. Therefore, our scheme provides a promising step towards
fault-tolerant solid-state quantum computation.
Related papers
- Diamond-shaped quantum circuit for real-time quantum dynamics in one
dimension [0.0]
We show that quantum many-body states can be universally represented using a quantum circuit comprising multi-qubit gates.
We also evaluate the efficiency of a quantum circuit constructed with two-qubit gates in quench dynamics for the transverse-field Ising model.
Our results reveal that a diamond-shaped quantum circuit, designed to approximate the multi-qubit gate-based quantum circuit, remarkably excels in accurately representing the long-time dynamics of the system.
arXiv Detail & Related papers (2023-11-10T07:07:54Z) - A vertical gate-defined double quantum dot in a strained germanium
double quantum well [48.7576911714538]
Gate-defined quantum dots in silicon-germanium heterostructures have become a compelling platform for quantum computation and simulation.
We demonstrate the operation of a gate-defined vertical double quantum dot in a strained germanium double quantum well.
We discuss challenges and opportunities and outline potential applications in quantum computing and quantum simulation.
arXiv Detail & Related papers (2023-05-23T13:42:36Z) - 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) - Quantum emulation of the transient dynamics in the multistate
Landau-Zener model [50.591267188664666]
We study the transient dynamics in the multistate Landau-Zener model as a function of the Landau-Zener velocity.
Our experiments pave the way for more complex simulations with qubits coupled to an engineered bosonic mode spectrum.
arXiv Detail & Related papers (2022-11-26T15:04:11Z) - 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) - Noncyclic Geometric Quantum Gates with Smooth Paths via Invariant-based
Shortcuts [4.354697470999286]
We propose a scheme to realize geometric quantum gates with noncyclic and nonadiabatic evolution via invariant-based shortcuts.
Our scheme provides a promising way to realize high-fidelity fault-tolerant quantum gates for scalable quantum computation.
arXiv Detail & Related papers (2021-02-01T15:05:29Z) - Experimental Realization of Nonadiabatic Holonomic Single-Qubit Quantum
Gates with Two Dark Paths in a Trapped Ion [41.36300605844117]
We show nonadiabatic holonomic single-qubit quantum gates on two dark paths in a trapped $171mathrmYb+$ ion based on four-level systems with resonant drives.
We find that nontrivial holonomic two-qubit quantum gates can also be realized within current experimental technologies.
arXiv Detail & Related papers (2021-01-19T06:57:50Z) - Demonstration of a non-Abelian geometric controlled-Not gate in a
superconducting circuit [14.11575652583778]
We report the first on-chip realization of a non-Abelian geometric controlled-Not gate in a superconducting circuit.
This gate represents an important step towards the all-geometric realization of scalable quantum computation on a superconducting platform.
arXiv Detail & Related papers (2020-09-08T09:42:38Z) - Boundaries of quantum supremacy via random circuit sampling [69.16452769334367]
Google's recent quantum supremacy experiment heralded a transition point where quantum computing performed a computational task, random circuit sampling.
We examine the constraints of the observed quantum runtime advantage in a larger number of qubits and gates.
arXiv Detail & Related papers (2020-05-05T20:11:53Z) - Implementation of geometric quantum gates on microwave-driven
semiconductor charge qubits [9.88147281393944]
A semiconductor-based charge qubit, confined in double quantum dots, can be a platform to implement quantum computing.
We provide a theoretical framework to implement universal geometric quantum gates in this system.
arXiv Detail & Related papers (2020-04-01T03:21:46Z)
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.