OneSPIN | Atomic scale coherent manipulation of the electron spin in semiconductors

Summary
Currently, a great deal of experimental research is dedicated to implement qubits on a wide variety of physical systems. In the last decade researchers have observed optically-active point-defects in 2D materials which serve as single photon sources and present spin-dependent optical emission, making them promising spin-photon interfaces. In parallel, new local probe techniques have been developed to detect magnetic resonance on single atomic spins, and more recently to demonstrate controlled charging and positioning of point-centres in 2D semiconductors. OneSPIN lies at the junction of these very active fields. Inspired by the opportunity that these recent findings bring, I propose to coherently probe single electronic spins localized at point-centres in 2D semiconductors and to engineer their atomic environment. The ultimate goal of this proposal is the demonstration of long spin coherence times for quantum information applications.

To achieve this ambitious goal, I will develop a novel approach based on a unique scanning tunnelling microscopy technique which allows for the engineering, excitation and optical detection of single spin resonance. This approach provides a solution to the current lack of tools capable of simultaneously recording the atomic and electronic structure of defects, their optoelectronic response, and the coherence properties of their spins. Using this tool, it will be possible to not only determine the role of the environment on spin coherence, but also to engineer it by deterministically moving localization centres over the surface, creating tailored ensembles of localized spin states. I will use 2D semiconductors which, being chemically stable and “all surface”, are systems which can naturally be addressed, manipulated and engineered using local probe techniques. OneSPIN has the potential to open new opportunities in the fields of material science, quantum information and semiconductor-based quantum technologies.
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More information & hyperlinks
Web resources: https://cordis.europa.eu/project/id/101075855
Start date: 01-01-2024
End date: 31-12-2028
Total budget - Public funding: 1 913 122,50 Euro - 1 913 122,00 Euro
Cordis data

Original description

Currently, a great deal of experimental research is dedicated to implement qubits on a wide variety of physical systems. In the last decade researchers have observed optically-active point-defects in 2D materials which serve as single photon sources and present spin-dependent optical emission, making them promising spin-photon interfaces. In parallel, new local probe techniques have been developed to detect magnetic resonance on single atomic spins, and more recently to demonstrate controlled charging and positioning of point-centres in 2D semiconductors. OneSPIN lies at the junction of these very active fields. Inspired by the opportunity that these recent findings bring, I propose to coherently probe single electronic spins localized at point-centres in 2D semiconductors and to engineer their atomic environment. The ultimate goal of this proposal is the demonstration of long spin coherence times for quantum information applications.

To achieve this ambitious goal, I will develop a novel approach based on a unique scanning tunnelling microscopy technique which allows for the engineering, excitation and optical detection of single spin resonance. This approach provides a solution to the current lack of tools capable of simultaneously recording the atomic and electronic structure of defects, their optoelectronic response, and the coherence properties of their spins. Using this tool, it will be possible to not only determine the role of the environment on spin coherence, but also to engineer it by deterministically moving localization centres over the surface, creating tailored ensembles of localized spin states. I will use 2D semiconductors which, being chemically stable and “all surface”, are systems which can naturally be addressed, manipulated and engineered using local probe techniques. OneSPIN has the potential to open new opportunities in the fields of material science, quantum information and semiconductor-based quantum technologies.

Status

SIGNED

Call topic

ERC-2022-STG

Update Date

31-07-2023
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Horizon Europe
HORIZON.1 Excellent Science
HORIZON.1.1 European Research Council (ERC)
HORIZON.1.1.0 Cross-cutting call topics
ERC-2022-STG ERC STARTING GRANTS
HORIZON.1.1.1 Frontier science
ERC-2022-STG ERC STARTING GRANTS