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February 5, 20260 citations

Unveiling the Miniband Structure of Graphene MoireSuperlattices via Gate-Dependent Terahertz Photocurrent Spectroscopy

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SPStephen et al. Power

Key Points

  • The study aims to characterize and quantify the electronic states and band structure in graphene moire superlattices using terahertz spectroscopy.
  • Applied gate-dependent terahertz photocurrent spectroscopy to probe electronic properties.
  • Used terahertz light at varying frequencies to explore distinct photocurrent regimes.
  • Focused on minimally twisted graphene and hexagonal boron nitride heterostructures.
  • Identified avoided band crossings and small energy gaps (1 to 20 meV) in the miniband structure.
  • Observed enhanced zero-bias responsivities linked to lower Fermi velocities in off-resonance conditions.
  • Noted bulk photocurrents related to the geometric Berry phase of the electronic minibands.

Abstract

Moiré superlattices formed at the interface between stacked 2D atomic crystals offer limitless opportunities to design materials with widely tunable properties and engineer intriguing quantum phases of matter. However, despite progress, precise probing of the electronic states and tantalizingly complex band textures of these systems remain challenging. Here, we present gate-dependent terahertz photocurrent spectroscopy as a robust technique to detect, explore, and quantify intricate electronic properties in graphene moiré superlattices. Specifically, using terahertz light at different frequencies, we demonstrate distinct photocurrent regimes, evidencing the presence of avoided band crossings and tiny (∼1 to 20 meV) inversion-breaking global and local energy gaps in the miniband structure of minimally twisted graphene and hexagonal boron nitride heterostructures, key information that is inaccessible by conventional electrical or optical techniques. In the off-resonance regime, when the radiation energy is smaller than the gap values, enhanced zero-bias responsivities arise in the system due to the lower Fermi velocities and specific valley degeneracies of the charge carriers subjected to moiré superlattice potentials. In stark contrast, the above-gap excitations give rise to bulk photocurrents intriguing optoelectronic responses related to the geometric Berry phase of the constituting electronic minibands. Besides their fundamental importance, these results place moirésuperlattices as promising material platforms for advanced, sensitive, and low-noise terahertz detection applications.

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Cite This Study

Stephen et al. Power (2025) studied this question.

synapsesocial.com/papers/6984346ff1d9ada3c1fb2841https://doi.org/10.1021/acsnano.5c05306?urlappend=%3fref%3dpdf&jav=vor&rel=cite-as
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