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Attosecond space-time imaging of coherent quantum dynamics

Project description

Probing ultrafast electron dynamics with high spatial resolution

Quantum coherence is a landmark feature of quantum physics, characterising phase correlations of light or matter waves. Lack of imaging tools that display extremely high spatial and temporal resolution hinders studies into coherence phenomena in electron systems. The goal of the EU-funded ATTIDA project is to develop the full potential of attosecond spectroscopy, probing ultrafast coherent phenomena at a high spatial resolution. The proposed approach relies on combining attosecond spectroscopy with scanning tunnelling microscopy and electron holography. This combination should enable researchers to study single-molecule charge dynamics and observe how electron systems in nanostructures evolve over time. Project activities could benefit multiple fields, including quantum optics, plasmonics, molecular electronics, surface science and femtochemistry.

Objective

Coherence is a fundamental property of quantum mechanics, characterizing phase correlations of light or matter waves. It is at the heart of many physical phenomena, such as the creation of electron-hole pairs in the photovoltaic effect or the fast migration of electronic charge within a molecule. In order to study coherent electron dynamics, extremely high spatial and temporal resolving power is required, which is highly challenging. Well-established imaging methods like scanning tunneling microscopy achieve atomic-scale spatial resolution, while lacking ultrafast time resolution. At the temporal frontier, I recently bridged the gap between attosecond spectroscopy (1as = 10-18 s) and the nano-scale. The goal of my research program is to unlock the full potential of attosecond spectroscopy by achieving simultaneous spatial and temporal probing of ultrafast coherent phenomena.

The proposed approach relies on the introduction of attosecond spectroscopy into scanning tunneling microscopy and electron holography. The spatial resolution of these methods is based on nano-scale needle tips, serving as local probes or as point-like electron sources. My team and I will develop attosecond temporal gates at the tips, enabling pump-probe spectroscopy. The resulting “pump” – triggering the coherent dynamics – and the “probe” – measuring its evolution – are localized in space and time, with attosecond and sub-nanometer precision. This combination will allow watching charge dynamics in a single molecule and observing multi-electron dynamics in nanostructures with atomic-scale site selectivity, as they evolve in real time.

My approach has the potential to shed new light on quantum optics, plasmonics, molecular electronics, surface science and femtochemistry. In particular, my team and I will study quantum tunneling on the atomic level, charge migration in organic molecules and electron-hole dynamics in low-dimensional solid-state systems.

Host institution

TECHNION - ISRAEL INSTITUTE OF TECHNOLOGY
Net EU contribution
€ 1 690 323,00
Address
SENATE BUILDING TECHNION CITY
32000 Haifa
Israel

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Activity type
Higher or Secondary Education Establishments
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Total cost
€ 1 690 323,00

Beneficiaries (1)