Imaging and controlling electron transport inside a quantum ring
arXiv:cond-mat/0611359 · doi:10.1038/nphys459
Abstract
Traditionally, the understanding of quantum transport, coherent and ballistic1, relies on the measurement of macroscopic properties such as the conductance. While powerful when coupled to statistical theories, this approach cannot provide a detailed image of "how electrons behave down there". Ideally, understanding transport at the nanoscale would require tracking each electron inside the nano-device. Significant progress towards this goal was obtained by combining Scanning Probe Microscopy (SPM) with transport measurements2-7. Some studies even showed signatures of quantum transport in the surrounding of nanostructures4-6. Here, SPM is used to probe electron propagation inside an open quantum ring exhibiting the archetype of electron wave interference phenomena: the Aharonov-Bohm effect8. Conductance maps recorded while scanning the biased tip of a cryogenic atomic force microscope above the quantum ring show that the propagation of electrons, both coherent and ballistic, can be investigated in situ, and even be controlled by tuning the tip potential.
11 text pages + 3 figures
References in corpus (3)
Cited by in corpus (34)
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- Transport inefficiency in branched-out mesoscopic networks: An analog of the Braess paradox
- Local Density of States in Mesoscopic Samples from Scanning Gate Microscopy
- Theory of scanning gate microscopy
- Measurement of the Tip-Induced Potential in Scanning Gate Experiments
- Observation of Interaction-Induced Modulations of a Quantum Hall Liquid's Area
- Coherent tunnelling across a quantum point contact in the quantum Hall regime
- Interference of electrons in backscattering through a quantum point contact
- Simulations of imaging of the local density of states by charged probe technique for resonant cavities
- Partial local density of states from scanning gate microscopy
- Scanning Gate Spectroscopy of transport across a Quantum Hall Nano-Island
- Braess paradox at the mesoscopic scale
- Spatial mapping and manipulation of two tunnel-coupled quantum dots
- Imaging backscattering through impurity-induced antidots in quantum Hall constrictions
- Simple quantum graphs proposal for quantum devices
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- A new transport phenomenon in nanostructures: A mesoscopic analog of the Braess paradox encountered in road networks
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- Spatial Current Patterns, Dephasing and Current Imaging in Graphene Nanoribbons
- Locally induced quantum interference in scanning gate experiments
- Scanning Gate Imaging of quantum point contacts and the origin of the 0.7 Anomaly
- Crossover from quantum to classical transport
- Atomic Resolution Imaging of Currents in Nanoscopic Quantum Networks via Scanning Tunneling Microscopy
- Mode specific backscattering in a quantum point contact
- Coherent magnetotransport and time-dependent transport through split-gated quantum constrictions
- 2D Rutherford-Like Scattering in Ballistic Nanodevices
- Investigations of local electronic transport in InAs nanowires by scanning gate microscopy at helium temperatures
- Stroboscopic wave packet description of time-dependent currents through ring-shaped nanostructures
- Electron backscattering in a cavity: ballistic and coherent effects
- Accurate characterization of tip-induced potential using electron interferometry
- Direct observation of magneto-electric Aharonov-Bohm effect in moiré-scale quantum paths of minimally twisted bilayer graphene
- Probing Quantum Geometric Phases via Scanning Tunneling Microscopy