MEMORY QUANTUM ICT

INFORMATION TRANSFER WITH CORRELATED NOISE AND MEMORY EFFECTS IN QUANTUM COMMUNICATION TECHNOLOGIES

 Coordinatore UNIVERSITAET ULM 

 Organization address address: HELMHOLTZSTRASSE 16
city: ULM
postcode: 89081

contact info
Nome: Rainer
Cognome: Jerg
Email: send email
Telefono: 497315000000
Fax: 497315000000

 Nazionalità Coordinatore Germany [DE]
 Totale costo 0 €
 EC contributo 160˙996 €
 Programma FP7-PEOPLE
Specific programme "People" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call FP7-PEOPLE-IEF-2008
 Funding Scheme MC-IEF
 Anno di inizio 2009
 Periodo (anno-mese-giorno) 2009-11-01   -   2011-10-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    UNIVERSITAET ULM

 Organization address address: HELMHOLTZSTRASSE 16
city: ULM
postcode: 89081

contact info
Nome: Rainer
Cognome: Jerg
Email: send email
Telefono: 497315000000
Fax: 497315000000

DE (ULM) coordinator 160˙996.90

Mappa


 Word cloud

Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.

memory    noise    scientists    become    physics    channels    qicts    quantum    experimental    optical    realistic    impact    ict    plenio    communication    miniaturization   

 Obiettivo del progetto (Objective)

'Nowadays, Information and Communication Technologies (ICT) play increasing central role in the socio-economic, scientific and technological development of our information society. Recently, the peculiar features exhibited by matter at the microscopic (quantum) level, reached by continuous miniaturization, have delivered very interesting advances in many ICT areas, i.e. quantum information science. At this level noise plays an important role, although so far scientists have mainly investigate the impact of uncorrelated noise on quantum ICT (QICT), i.e. noise sources not exhibiting correlations in space and in time. However, investigating the latter will become increasingly pressing with the continuing miniaturization of information processing devices and with higher and higher transmission rates over quantum channels. Here, we will investigate and characterize in a universal framework correlated noise and memory effects in QICTs, which will have a significant impact to realistic optical and solid-state implementations. Particularly, we will deepen a new many-body approach to memory channels (Plenio and Virmani, 2007) and generalize it to bosonic channels, e.g. optical fibers used in long-distance secure quantum communication. Finally, we will propose experimental tests of the expected results, opening up new horizons for realistic QICTs, i.e. fast communications and nanotech processors. This highly original and innovative proposal has the advantage of uniting quantum information theory and condensed matter physics, two very fruitful branches of physics, in which European scientists both on the theoretical as well as on the experimental side are renowned worldwide with Imperial College being a centre of excellence. Under the tutoring of a leading expert in the field (Prof. M. Plenio), it will help the fellow, Dr. F. Caruso, whose previous expertise makes him well-suited for this project, to become a fully independent researcher aspiring to leading academic positions.'

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