FURORE

FUndamental studies and innovative appROaches of REsearch on magnetism

 Coordinatore UNIVERSITAET HAMBURG 

Spiacenti, non ci sono informazioni su questo coordinatore. Contattare Fabio per maggiori infomrazioni, grazie.

 Nazionalità Coordinatore Germany [DE]
 Totale costo 2˙049˙600 €
 EC contributo 2˙049˙600 €
 Programma FP7-IDEAS-ERC
Specific programme: "Ideas" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call ERC-2008-AdG
 Funding Scheme ERC-AG
 Anno di inizio 2009
 Periodo (anno-mese-giorno) 2009-01-01   -   2013-12-31

 Partecipanti

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

 Organization address address: EDMUND-SIEMERS-ALLEE 1
city: HAMBURG
postcode: 20146

contact info
Titolo: Ms.
Nome: Linda
Cognome: Reams-Behboud
Email: send email
Telefono: +49 40 42838 4425
Fax: +49 40 42838 5627

DE (HAMBURG) hostInstitution 0.00
2    UNIVERSITAET HAMBURG

 Organization address address: EDMUND-SIEMERS-ALLEE 1
city: HAMBURG
postcode: 20146

contact info
Titolo: Prof.
Nome: Roland Martin
Cognome: Wiesendanger
Email: send email
Telefono: 4940430000000
Fax: 4940430000000

DE (HAMBURG) hostInstitution 0.00

Mappa


 Word cloud

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

mexfm    interactions    nanostructures    dependent    individual    quantum    combination    scanning    stm    local    insulators    tunnelling    experiments    single    ultracold    atom    probe    sp    excitations    microscopy    force    combine    magnetic    atoms    tip    surfaces    exchange    magnetization    spin    limit   

 Obiettivo del progetto (Objective)

'Based on our developments of Spin-Polarized Scanning Tunnelling Microscopy (SP-STM) and Magnetic Exchange Force Microscopy (MExFM), both offering spin sensitivity and spatial resolution down to the ultimate limit of single atoms, we will study spin-dependent interactions between individual magnetic atoms on metal surfaces, in diluted magnetic semiconductors, on surfaces of magnetic insulators, as well as between single-atom tips and ultracold quantum gases. Besides the investigation of static spin states and spin interactions, we will manipulate spin states in a controlled manner down to the single atom limit by making use of the spin-transfer torque exerted by spin-currents from an atomically sharp SP-STM tip across a vacuum barrier. Moreover, we will combine spin-current induced magnetization switching experiments on magnetic metallic nanostructures based on SP-STM with pump-probe experiments, thereby studying the fundamentals of magnetization reversal processes both spatially and time-resolved. We will make use of the powerful combination of SP-STM with single-atom manipulation to probe spin-dependent interactions in artificial nanostructures. In the case of magnetic insulators we will probe spin states and spin-dependent interactions based on local measurements of the quantum-mechanical exchange and correlation forces between a single-atom tip with a well-defined spin state and single atoms of the sample. Spin excitations at the level of individual atoms will be probed by a combination of SP-STM with inelastic electron tunnelling spectroscopy, while the combination of MExFM with measurements of the damping of the cantilever oscillation will be employed to reveal local spin excitations in electrically insulating materials. Finally, we will couple an MExFM-type force sensor to the spin state of an optically trapped ultracold quantum gas with the challenging goal to combine scanning probe and quantum optical methods for manipulating quantum states of matter.'

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