Ultrafast Laser-Induced Photothermoelectric Currents in Graphene Junctions in the Mid-Infrared

Abstract We investigate the carrier dynamics in graphene junctions under mid-infrared excitation using ultrafast pump–probe photocurrent spectroscopy. We utilize dual split gate devices to demonstrate that the photothermoelectric effect can dominate the photocurrent response of graphene also for a mid-infrared femtosecond excitation. Graphene retains its broadband photocurrent response in this spectral region, but the photocurrent relaxation time increases from ∼2 ps below 8–9 μm up to 3 ps at longer mid-infrared wavelengths. The absence of a pronounced phonon bottleneck in the decay dynamics at room temperature suggests an efficient interplay of electron–electron and electron–phonon scattering even for photon energies below the optical phonon energy in graphene. The observed wavelength dependence of the photocurrent relaxation times is consistent with energy-dependent theoretical relaxation times as derived from a microscopic transport theory of graphene that includes electron–phonon coupling within a Holstein-Peierls Hamiltonian.

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Publication Details

Journal
Nano Letters
Published
2026-09-22
DOI
https://doi.org/10.1021/acs.nanolett.6c03809
Primary Topic
Graphene research and applications
Type
article
Field-Weighted Citation Impact
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article

Ultrafast Laser-Induced Photothermoelectric Currents in Graphene Junctions in the Mid-Infrared

Michel Panhans, Alexander W. Holleitner, Christoph Kastl, Frank Ortmann et al.
Nano Letters
Graphene research and applications
article

Ultrafast Laser-Induced Photothermoelectric Currents in Graphene Junctions in the Mid-Infrared

Michel Panhans, Alexander W. Holleitner, Christoph Kastl, Frank Ortmann, Johannes Schmuck, Joshua A. Robinson, Xiaoyi Zhou, Sebastian Loy, Chengye Dong, Nina Pettinger, Sergey Zherebtsov
article en

Abstract

Abstract We investigate the carrier dynamics in graphene junctions under mid-infrared excitation using ultrafast pump–probe photocurrent spectroscopy. We utilize dual split gate devices to demonstrate that the photothermoelectric effect can dominate the photocurrent response of graphene also for a mid-infrared femtosecond excitation. Graphene retains its broadband photocurrent response in this spectral region, but the photocurrent relaxation time increases from ∼2 ps below 8–9 μm up to 3 ps at longer mid-infrared wavelengths. The absence of a pronounced phonon bottleneck in the decay dynamics at room temperature suggests an efficient interplay of electron–electron and electron–phonon scattering even for photon energies below the optical phonon energy in graphene. The observed wavelength dependence of the photocurrent relaxation times is consistent with energy-dependent theoretical relaxation times as derived from a microscopic transport theory of graphene that includes electron–phonon coupling within a Holstein-Peierls Hamiltonian.

Nano Letters
Pennsylvania State University (US), Munich Center for Quantum Science and Technology (DE), Technical University of Munich (DE)
Affordable and clean energy
Openalex Percentile: Top 24%
Graphene research and applications
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