Near-field photocurrent nanoscopy at room temperature detects the Landauer resistivity dipole at a buried graphene monolayer-bilayer interface: near charge neutrality, photocurrent polarity follows the bias direction; at higher doping it does not.
Direct visualization of electric current induced dipoles of atomic impurities
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abstract
Learning the electron scattering around atomic impurities is a fundamental step to fully understand the basic electronic transport properties of realistic conducting materials. Although many efforts have been made in this field for several decades, atomic scale transport around single point-like impurities has yet been achieved. Here, we report the direct visualization of the electric current induced dipoles around single atomic impurities in epitaxial bilayer graphene by multi-probe low temperature scanning tunneling potentiometry as the local current density is raised up to around 25 A/m, which is considerably higher than that in previous studies. We find the directions of these dipoles which are parallel or anti-parallel to local current are determined by the charge polarity of the impurities, revealing the direct evidence for the existence of the carrier density modulation effect proposed by Landauer in 1976. Furthermore, by $in$ $situ$ tuning local current direction with contact probes, these dipoles are redirected correspondingly. Our work paves the way to explore the electronic quantum transport phenomena at single atomic impurity level and the potential future electronics toward or beyond the end of Moore's Law.
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cond-mat.mes-hall 1years
2025 1verdicts
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Landauer resistivity dipole at one dimensional defect revealed via near-field photocurrent nanoscopy
Near-field photocurrent nanoscopy at room temperature detects the Landauer resistivity dipole at a buried graphene monolayer-bilayer interface: near charge neutrality, photocurrent polarity follows the bias direction; at higher doping it does not.