Coherent Terahertz Detection via Ultrafast Dynamics of Hot Dirac Fermions in Graphene

Mark D. Thomson (Corresponding author), Florian Ludwig (Corresponding author), Jakob Holstein, Reiam Al-Mudhafar, Shihab Al-Daffaie, Hartmut G. Roskos (Corresponding author)

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Abstract

Graphene has recently been shown to exhibit ultrafast conductivity modulation due to periodic carrier heating by either terahertz (THz) waves, leading to self-induced harmonic generation, or the intensity beat note of two-color optical radiation. We exploit the latter to realize an optoelectronic photomixer for coherent, continuous-wave THz detection, based on a photoconductive antenna with multilayer CVD-grown graphene in the gap. While for biased THz emitters the dark current would pose a serious detriment for performance, we show that this is not the case for bias-free THz detection and demonstrate detection up to frequencies of at least 700 GHz at room temperature, even without optimized tuning of the doping. We account for the photocurrent and photomixing response using detailed simulations of the time-dependent carrier distribution, which also indicate significant potential for enhancement of the sensitivity, to become competitive with well-established semiconductor photomixers.
Original languageEnglish
Pages (from-to)4765-4774
Number of pages10
JournalACS Nano
Volume18
Issue number6
Early online date1 Feb 2024
DOIs
Publication statusPublished - 13 Feb 2024

Funding

Financial support by DFG, project RO 770/40.2, is acknowledged.

FundersFunder number
Deutsche ForschungsgemeinschaftRO 770/40.2

    Keywords

    • coherent detection
    • graphene
    • optoelectronic
    • photoconductive antenna
    • terahertz

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