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A quantum network for distributed quantum computation

Descripción del proyecto

Redes cuánticas tolerantes a los fallos

Las redes cuánticas son un elemento importante de la computación cuántica. Facilitan la transmisión de información en forma de cúbits compartiendo estados entrelazados distribuidos entre procesadores cuánticos separados físicamente. Sin embargo, la información cuántica es muy frágil. La distribución de cúbits correctores de errores por la red puede proteger a la información cuántica de errores causados por la descoherencia. El objetivo del proyecto QUNET, financiado con fondos europeos, consiste en demostrar la detección cuántica de errores en una red cuántica que consta de cuatro nodos. La elaboración de unos esquemas de corrección cuántica de errores capaces de proteger cúbits en distancias largas es un paso crucial que podría sentar las bases para crear redes cuánticas cada vez más grandes.

Objetivo

A key question for quantum science is: Can quantum systems be protected from decoherence? This is not just a fundamental question; if we can reliably control large quantum states, it becomes possible to perform precise tests of quantum mechanics and computational tasks that go beyond classical physics.

A promising approach is to protect quantum states by distributing quantum error correction over quantum networks. These networks consist of nodes that contain quantum bits to store and process quantum states, and that are connected by entanglement links based on photons. This approach is naturally scalable to larger sizes by connecting independent modules, and a wide variety of fascinating error correction codes is enabled by different network topologies.

Pioneering experiments have demonstrated basic elements of quantum networks in various systems. However, due to the required precise understanding and control of complex quantum systems, protecting quantum networks against decoherence remains a major outstanding challenge in quantum science.

The goal of this proposal is to demonstrate the detection of quantum errors over a 4-node quantum network. This network forms a unit cell that demonstrates all key principles for larger error-corrected quantum networks. This ambitious goal can now be pursued due to two advances by my colleagues and me using NV centers in diamond: (1) Entanglement of two NV centers through photons and (2) Complete control over multiple nuclear spins coupled to single NV centers. To realize the network, I will develop robust quantum memories, non-destructive spin measurements, and a precise microscopic understanding and control of coupled spin systems in diamond.

Reaching this goal will be a potentially decisive step towards large quantum networks and distributed quantum computations: we will enter a new territory in which quantum states can be made more stable by making networks larger and larger, ultimately completely overcoming decoherence.

Régimen de financiación

ERC-STG - Starting Grant

Institución de acogida

TECHNISCHE UNIVERSITEIT DELFT
Aportación neta de la UEn
€ 1 499 910,00
Dirección
STEVINWEG 1
2628 CN Delft
Países Bajos

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Región
West-Nederland Zuid-Holland Delft en Westland
Tipo de actividad
Higher or Secondary Education Establishments
Enlaces
Coste total
€ 1 499 910,00

Beneficiarios (1)