Quantum teleportation of physical qubits into logical code-spaces
- URL: http://arxiv.org/abs/2009.06242v1
- Date: Mon, 14 Sep 2020 07:50:49 GMT
- Title: Quantum teleportation of physical qubits into logical code-spaces
- Authors: Yi-Han Luo, Ming-Cheng Chen, Manuel Erhard, Han-Sen Zhong, Dian Wu,
Hao-Yang Tang, Qi Zhao, Xi-Lin Wang, Keisuke Fujii, Li Li, Nai-Le Liu, Kae
Nemoto, William J. Munro, Chao-Yang Lu, Anton Zeilinger, Jian-Wei Pan
- Abstract summary: Quantum gate teleportation has been proposed as an elegant solution to this problem.
We create a maximally entangled state between a physical and an error-correctable logical qubit.
We then demonstrate the teleportation of quantum information encoded on the physical qubit into the error-corrected logical qubit with fidelities up to 0.786.
- Score: 12.44010756857228
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Quantum error correction is an essential tool for reliably performing tasks
for processing quantum information on a large scale. However, integration into
quantum circuits to achieve these tasks is problematic when one realizes that
non-transverse operations, which are essential for universal quantum
computation, lead to the spread of errors. Quantum gate teleportation has been
proposed as an elegant solution for this. Here, one replaces these fragile,
non-transverse inline gates with the generation of specific, highly entangled
offline resource states that can be teleported into the circuit to implement
the non-transverse gate. As the first important step, we create a maximally
entangled state between a physical and an error-correctable logical qubit and
use it as a teleportation resource. We then demonstrate the teleportation of
quantum information encoded on the physical qubit into the error-corrected
logical qubit with fidelities up to 0.786. Our scheme can be designed to be
fully fault-tolerant so that it can be used in future large-scale quantum
technologies.
Related papers
- The curse of random quantum data [62.24825255497622]
We quantify the performances of quantum machine learning in the landscape of quantum data.
We find that the training efficiency and generalization capabilities in quantum machine learning will be exponentially suppressed with the increase in qubits.
Our findings apply to both the quantum kernel method and the large-width limit of quantum neural networks.
arXiv Detail & Related papers (2024-08-19T12:18:07Z) - High-fidelity and Fault-tolerant Teleportation of a Logical Qubit using Transversal Gates and Lattice Surgery on a Trapped-ion Quantum Computer [0.0]
We implement the first demonstration of a fault-tolerant state teleportation circuit for a quantum error correction.
The circuits use up to 30 trapped ions physical layer qubits and employ real-time quantum error correction.
arXiv Detail & Related papers (2024-04-25T16:40:21Z) - 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) - Demonstration of Quantum Energy Teleportation on Superconducting Quantum
Hardware [0.0]
We report the realization and observation of quantum energy teleportation on real superconducting quantum hardware.
Results are consistent with the exact solution of the theory and are improved by the mitigation of measurement error.
arXiv Detail & Related papers (2023-01-07T01:19:04Z) - Quantum teleportation of quantum causal structures [0.0]
We develop quantum teleportation of arbitrary quantum causal structures.
The central idea is to just teleport the inputs to and outputs from the operations of agents.
We prove that our partially post-selected teleportation protocol is compatible with all quantum causal structures.
arXiv Detail & Related papers (2022-03-01T13:29:09Z) - Remote sensing and faithful quantum teleportation through non-localized
qubits [0.0]
In this paper, we address the idea of remote sensing in a teleportation scenario with topological qubits more robust against noise.
We show that how this nonlocal property, helps us to achieve near-perfect quantum teleportation even with mixed quantum states.
arXiv Detail & Related papers (2021-09-11T13:23:30Z) - Hardware-Efficient, Fault-Tolerant Quantum Computation with Rydberg
Atoms [55.41644538483948]
We provide the first complete characterization of sources of error in a neutral-atom quantum computer.
We develop a novel and distinctly efficient method to address the most important errors associated with the decay of atomic qubits to states outside of the computational subspace.
Our protocols can be implemented in the near-term using state-of-the-art neutral atom platforms with qubits encoded in both alkali and alkaline-earth atoms.
arXiv Detail & Related papers (2021-05-27T23:29:53Z) - 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) - Exploiting Quantum Teleportation in Quantum Circuit Mapping [2.9830377319529067]
We propose to exploit quantum teleportation as a possible complementary method.
Quantum teleportation conceptually allows to move the state of a qubit over arbitrary long distances with constant overhead.
The potential is demonstrated by a case study on the IBM Q Tokyo architecture which already shows promising improvements.
arXiv Detail & Related papers (2020-11-14T15:03:24Z) - Fault-tolerant Coding for Quantum Communication [71.206200318454]
encode and decode circuits to reliably send messages over many uses of a noisy channel.
For every quantum channel $T$ and every $eps>0$ there exists a threshold $p(epsilon,T)$ for the gate error probability below which rates larger than $C-epsilon$ are fault-tolerantly achievable.
Our results are relevant in communication over large distances, and also on-chip, where distant parts of a quantum computer might need to communicate under higher levels of noise.
arXiv Detail & Related papers (2020-09-15T15:10:50Z) - Teleporting quantum information encoded in fermionic modes [62.997667081978825]
We consider teleportation of quantum information encoded in modes of a fermionic field.
In particular, one is forced to distinguish between single-mode entanglement swapping, and qubit teleportation with or without authentication.
arXiv Detail & Related papers (2020-02-19T14:15:16Z)
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.