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Light-field control of real and virtual charge carriers

Author

Listed:
  • Tobias Boolakee

    (Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU))

  • Christian Heide

    (Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU)
    SLAC National Accelerator Laboratory)

  • Antonio Garzón-Ramírez

    (University of Rochester
    McGill University)

  • Heiko B. Weber

    (Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU))

  • Ignacio Franco

    (University of Rochester
    University of Rochester)

  • Peter Hommelhoff

    (Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU))

Abstract

Light-driven electronic excitation is a cornerstone for energy and information transfer. In the interaction of intense and ultrafast light fields with solids, electrons may be excited irreversibly, or transiently during illumination only. As the transient electron population cannot be observed after the light pulse is gone, it is referred to as virtual, whereas the population that remains excited is called real1–4. Virtual charge carriers have recently been associated with high-harmonic generation and transient absorption5–8, but photocurrent generation may stem from real as well as virtual charge carriers9–14. However, a link between the generation of the carrier types and their importance for observables of technological relevance is missing. Here we show that real and virtual charge carriers can be excited and disentangled in the optical generation of currents in a gold–graphene–gold heterostructure using few-cycle laser pulses. Depending on the waveform used for photoexcitation, real carriers receive net momentum and propagate to the gold electrodes, whereas virtual carriers generate a polarization response read out at the gold–graphene interfaces. On the basis of these insights, we further demonstrate a proof of concept of a logic gate for future lightwave electronics. Our results offer a direct means to monitor and excite real and virtual charge carriers. Individual control over each type of carrier will markedly increase the integrated-circuit design space and bring petahertz signal processing closer to reality15,16.

Suggested Citation

  • Tobias Boolakee & Christian Heide & Antonio Garzón-Ramírez & Heiko B. Weber & Ignacio Franco & Peter Hommelhoff, 2022. "Light-field control of real and virtual charge carriers," Nature, Nature, vol. 605(7909), pages 251-255, May.
  • Handle: RePEc:nat:nature:v:605:y:2022:i:7909:d:10.1038_s41586-022-04565-9
    DOI: 10.1038/s41586-022-04565-9
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