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Updated: Aug 7, 2026

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All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics
Published on: January 19, 2018
Direct visualization of carrier density modulation effect around individual charged impurities
Yaowu Liu1,2,3, Zichun Zhang1, Sidan Chen1
1State Key Laboratory of Low-Dimensional Quantum Physics, Department of physics, Tsinghua University, Beijing 100084, China.
Summary
Researchers visualized the impact of charged impurities on electronic devices at the atomic level. They observed how impurity charge polarity controls local electrical potential, offering new insights into carrier scattering.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Nanotechnology
Background:
- Charged impurities are major sources of carrier scattering in electronic devices, especially as device sizes shrink.
- Understanding atomic-level scattering is crucial for next-generation electronics.
- Experimental visualization of local electrochemical potential around impurities has been challenging.
Purpose of the Study:
- To experimentally visualize the local electrochemical potential distribution around individual charged impurities.
- To investigate the relationship between impurity charge polarity and carrier scattering.
- To demonstrate the active control of electrical potential dipoles.
Main Methods:
- Utilized multiprobe scanning tunneling potentiometry.
- Directly visualized the dipolar potential distribution around single charged impurities in epitaxial bilayer graphene.
- Performed in situ tuning of local current directions.
Main Results:
- Successfully visualized the nanometer-scale dipolar potential distribution around individual charged impurities.
- Demonstrated that dipole orientations align or antialign with current, dictated by impurity charge polarity.
- Provided direct evidence for Landauer's 1976 carrier density modulation theory.
- Showcased active control over dipole orientations by adjusting current direction.
Conclusions:
- Advanced the understanding of charged-impurity scattering from ensemble to single-impurity level.
- Opened new avenues for exploring quantum transport phenomena at the atomic scale.
- Highlighted the potential for manipulating electronic properties at the atomic level.

