Teleportation and Entanglement Swapping of Continuous Quantum Variables of Microwave Radiation
- URL: http://arxiv.org/abs/2501.05537v1
- Date: Thu, 09 Jan 2025 19:20:59 GMT
- Title: Teleportation and Entanglement Swapping of Continuous Quantum Variables of Microwave Radiation
- Authors: Baleegh Abdo, William Shanks, Oblesh Jinka, J. R. Rozen, Jason Orcutt,
- Abstract summary: Continuous-variable (CV) entanglement can be efficiently and unconditionally produced by squeezing light in a nonlinear medium.
Here, we demonstrate three key elements of CV-based microwave quantum communication.
Such hardware-efficient CV entanglement building blocks could enable wide-ranging applications in quantum computation, quantum cryptography, and quantum communication.
- Score: 0.0
- License:
- Abstract: Quantum communication is needed to build powerful quantum computers and establish reliable quantum networks. At its basis lies the ability to generate and distribute entanglement to separate quantum systems, which can be used to run remote quantum operations on them or teleport quantum states from one system to another with the help of classical channels. To this end, it is useful to harness the resource of continuous-variable (CV) entanglement since it can be efficiently and unconditionally produced by squeezing light in a nonlinear medium and can be easily manipulated, distributed, and measured using standard components. While various aspects of CV-based quantum communication have been successfully demonstrated in the optical domain, some key capabilities, such as entanglement swapping, have been lacking in the microwave domain. Here, we demonstrate three key elements of CV-based microwave quantum communication, (1) a Josephson mixer operating as nondegenerate two-mode entangler with maximum measured logarithmic negativity E_N=1.5, (2) a quantum teleportation apparatus, capable of teleporting vacuum and coherent states with a maximum fidelity of 73%, which exceeds the 50% classical limit and is mainly limited by intermediate losses in the setup, and (3) an entanglement swapping system which generates entanglement between two remote noninteracting modes via entanglement swapping operations applied to input vacuum and coherent states with maximum measured logarithmic negativity E_N=0.53. Such hardware-efficient CV entanglement building blocks that are based on nondegenerate Josephson mixers could enable wide-ranging applications in modular quantum computation, quantum cryptography, and quantum communication.
Related papers
- The multimode conditional quantum Entropy Power Inequality and the squashed entanglement of the extreme multimode bosonic Gaussian channels [53.253900735220796]
Inequality determines the minimum conditional von Neumann entropy of the output of the most general linear mixing of bosonic quantum modes.
Bosonic quantum systems constitute the mathematical model for the electromagnetic radiation in the quantum regime.
arXiv Detail & Related papers (2024-10-18T13:59:50Z) - Realizing fracton order from long-range quantum entanglement in programmable Rydberg atom arrays [45.19832622389592]
Storing quantum information requires battling quantum decoherence, which results in a loss of information over time.
To achieve error-resistant quantum memory, one would like to store the information in a quantum superposition of degenerate states engineered in such a way that local sources of noise cannot change one state into another.
We show that this platform also allows to detect and correct certain types of errors en route to the goal of true error-resistant quantum memory.
arXiv Detail & Related papers (2024-07-08T12:46:08Z) - QuantumSEA: In-Time Sparse Exploration for Noise Adaptive Quantum
Circuits [82.50620782471485]
QuantumSEA is an in-time sparse exploration for noise-adaptive quantum circuits.
It aims to achieve two key objectives: (1) implicit circuits capacity during training and (2) noise robustness.
Our method establishes state-of-the-art results with only half the number of quantum gates and 2x time saving of circuit executions.
arXiv Detail & Related papers (2024-01-10T22:33:00Z) - Cavity-enhanced quantum network nodes [0.0]
A future quantum network will consist of quantum processors that are connected by quantum channels.
I will describe how optical resonators facilitate quantum network nodes.
arXiv Detail & Related papers (2022-05-30T18:50:35Z) - 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) - Optomechanical quantum teleportation [6.142838447030082]
We demonstrate quantum teleportation of an optical input state onto a long-lived optomechanical memory.
Our protocol also allows for the first time to store and retrieve an arbitrary qubit state onto a dual-rail encoded optomechanical quantum memory.
arXiv Detail & Related papers (2021-04-05T18:00:02Z) - Experimental quantum teleportation of propagating microwaves [0.0]
We show a realization of deterministic quantum teleportation of coherent microwave states by exploiting two-mode squeezing and analog feed distances.
Our results provide a key ingredient for the teleportation-based quantum gate for modular quantum computing with superconducting circuits.
arXiv Detail & Related papers (2021-03-06T16:59:53Z) - Demonstration of quantum advantage by a joint detection receiver for
optical communications using quantum belief propagation on a trapped-ion
device [0.7758302353877525]
We present an experimental realization of a quantum joint detection receiver for binary phase shift keying codewords of a 3-bit linear tree code.
The receiver, translated to a quantum circuit, was experimentally implemented on a trapped-ion device.
We provide an experimental framework that surpasses the quantum limit on the minimum average decoding error probability.
arXiv Detail & Related papers (2021-02-25T18:05:31Z) - 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) - Telecom-heralded entanglement between remote multimode solid-state
quantum memories [55.41644538483948]
Future quantum networks will enable the distribution of entanglement between distant locations and allow applications in quantum communication, quantum sensing and distributed quantum computation.
Here we report the demonstration of heralded entanglement between two spatially separated quantum nodes, where the entanglement is stored in multimode solid-state quantum memories.
We also show that the generated entanglement is robust against loss in the heralding path, and demonstrate temporally multiplexed operation, with 62 temporal modes.
arXiv Detail & Related papers (2021-01-13T14:31:54Z) - Two-way covert quantum communication in the microwave regime [0.0]
Quantum communication addresses the problem of exchanging information across macroscopic distances.
We advance a new paradigm for secure quantum communication by combining backscattering concepts with covert communication in the microwave regime.
This work makes a decisive step toward implementing secure quantum communication concepts in the previously uncharted $1$-$10$ GHz frequency range.
arXiv Detail & Related papers (2020-04-15T16:36:59Z)
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.