Quantum Interfaces Sensors and Communication based on Entanglement
Quantum entanglement has the capacity to enable disruptive technologies that solve outstanding issues in: - Trust, privacy protection, and security in two- and multi-party transactions; - Novel or enhanced modes of operation of IC...
ver más
¿Tienes un proyecto y buscas un partner? Gracias a nuestro motor inteligente podemos recomendarte los mejores socios y ponerte en contacto con ellos. Te lo explicamos en este video
Proyectos interesantes
seQureNet
Secure information processing in quantum networks
183K€
Cerrado
QNETWORK
Quantum networks wired by multi spin entanglement
2M€
Cerrado
QUREP
Quantum Repeater Architectures Based on Quantum Memories and...
2M€
Cerrado
PLEC2021-007669
Distribución de entrelazamiento para Redes Cuánticas (Q-NETW...
504K€
Cerrado
PID2020-113738GB-I00
NUEVAS HERRAMIENTAS EN INFORMACION Y COMUNICACION CUANTICA
91K€
Cerrado
QCC
Quantum Communication and Cryptography
981K€
Cerrado
Información proyecto Q-ESSENCE
Líder del proyecto
UNIWERSYTET WARSZAWSKI
No se ha especificado una descripción o un objeto social para esta compañía.
TRL
4-5
Presupuesto del proyecto
7M€
Fecha límite de participación
Sin fecha límite de participación.
Descripción del proyecto
Quantum entanglement has the capacity to enable disruptive technologies that solve outstanding issues in: - Trust, privacy protection, and security in two- and multi-party transactions; - Novel or enhanced modes of operation of ICT devices; - Reference standards, sensing, and metrology. The development of entanglement-based strategies addresses these challenges and provides the foundations for quantum technologies of the 21st century. The practical exploitation of entanglement requires groundbreaking levels of robustness and flexibility for deployment in real-world environments. This ambitious goal can be reached only through radically new designs of protocols, architectures, interfaces, and components. Q-ESSENCE will achieve this by a concerted application-driven effort covering relevant experimental, phenomenological, and fundamental aspects. Our consortium will target three main outcomes: 1) Development of entanglement-enabled and entanglement-enhanced ICT devices: atomic clocks, quantum sensors, and quantum random-number generators; 2) Novel physical-layer architectures for long-distance quantum communication that surpass current distance limitations through the deployment of next-generation components; 3) Distributed quantum information protocols that provide disruptive solutions to multiuser trust, privacy-protection, and security scenarios based on multipartite entanglement. These outcomes will be reached through the underpinning science and enabling technologies of: light-matter interfaces providing faithful interconversion between different physical realizations of qubits; entanglement engineering at new scales and distances; robust architectures protecting quantum information from decoherence; quantum information concepts that solve problems of limited trust and privacy intrusion. The project builds on the outstanding expertise of the consortium demonstrated by pioneering works over the past decades, enhanced by a strong industrial perspective.