Extreme light confinement in plasmonic nanosystems enables novel applications in photonics, sensor technology, energy harvesting, biology, and quantum information processing. Fullerenes represent an extreme case for nanoplasmonics: They are subnanometer carbon-based molecules showing high-energy and ultrabroad plasmon resonances; however, the fundamental mechanisms driving the plasmonic response and the corresponding collective electron dynamics are still elusive. Here, we uncover the dominant role of electron correlations in the dynamics of the giant plasmon resonance (GPR) of the subnanometer system C60 by using attosecond photoemission chronoscopy. We find a characteristic photoemission delay of up to about 300 attoseconds that is purely induced by coherent large-scale electron correlations in the plasmonic potential. These results provide insights into the nature of the plasmon resonances in subnanometer systems and open perspectives for advancing nanoplasmonic applications.

Biswas, S., Trabattoni, A., Rupp, P., Magrakvelidze, M., Madjet, M.E.-., De Giovannini, U., et al. (2025). Correlation-driven attosecond photoemission delay in the plasmonic excitation of C60 fullerene. SCIENCE ADVANCES, 11(7) [10.1126/sciadv.ads0494].

Correlation-driven attosecond photoemission delay in the plasmonic excitation of C60 fullerene

De Giovannini U.;Galli M.;Lucchini M.;Rubio A.;
2025-02-12

Abstract

Extreme light confinement in plasmonic nanosystems enables novel applications in photonics, sensor technology, energy harvesting, biology, and quantum information processing. Fullerenes represent an extreme case for nanoplasmonics: They are subnanometer carbon-based molecules showing high-energy and ultrabroad plasmon resonances; however, the fundamental mechanisms driving the plasmonic response and the corresponding collective electron dynamics are still elusive. Here, we uncover the dominant role of electron correlations in the dynamics of the giant plasmon resonance (GPR) of the subnanometer system C60 by using attosecond photoemission chronoscopy. We find a characteristic photoemission delay of up to about 300 attoseconds that is purely induced by coherent large-scale electron correlations in the plasmonic potential. These results provide insights into the nature of the plasmon resonances in subnanometer systems and open perspectives for advancing nanoplasmonic applications.
12-feb-2025
Settore PHYS-04/A - Fisica teorica della materia, modelli, metodi matematici e applicazioni
Biswas, S., Trabattoni, A., Rupp, P., Magrakvelidze, M., Madjet, M.E.-., De Giovannini, U., et al. (2025). Correlation-driven attosecond photoemission delay in the plasmonic excitation of C60 fullerene. SCIENCE ADVANCES, 11(7) [10.1126/sciadv.ads0494].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10447/700389
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