Controlled Dephasing of a Quantum Dot: From Coherent to Sequential Tunneling
arXiv:cond-mat/0607495 · doi:10.1103/PhysRevLett.98.096803
Abstract
Resonant tunneling through identical potential barriers is a textbook problem in quantum mechanics. Its solution yields total transparency (100% tunneling) at discrete energies. This dramatic phenomenon results from coherent interference among many trajectories, and it is the basis of transport through periodic structures. Resonant tunneling of electrons is commonly seen in semiconducting 'quantum dots'. Here we demonstrate that detecting (distinguishing) electron trajectories in a quantum dot (QD) renders the QD nearly insulating. We couple trajectories in the QD to a 'detector' by employing edge channels in the integer quantum Hall regime. That is, we couple electrons tunneling through an inner channel to electrons in the neighboring outer, 'detector' channel. A small bias applied to the detector channel suffices to dephase (quench) the resonant tunneling completely. We derive a formula for dephasing that agrees well with our data and implies that just a few electrons passing through the detector channel suffice to dephase the QD completely. This basic experiment shows how path detection in a QD induces a transition from delocalization (due to coherent tunneling) to localization (sequential tunneling).
Cited by in corpus (13)
- Controlled Dephasing of Electrons by Non-Gaussian Shot Noise
- Noise dephasing in the edge states of the Integer Quantum Hall regime
- Tuning decoherence with a voltage probe
- Quantum interference and spin polarization on Rashba double quantum dots
- Fractionalization noise in edge channels of integer quantum Hall states
- Controlled dephasing of an electron interferometer with a path detector at equilibrium
- Coulomb-interaction effects in full counting statistics of a quantum-dot Aharonov-Bohm interferometer
- Flux-dependent occupations and occupation difference in geometrically symmetric and energy degenerate double-dot Aharonov-Bohm interferometers
- Dynamical Scheme for Interferometric Measurements of Full-Counting Statistics
- Cross-correlation of two interacting conductors
- Dephasing of electrons in the Aharonov-Bohm interferometer with a single-molecular vibrational junction
- Quantum-limited charge detection with two quantum point contacts
- Electron transport through a quantum interferometer: A theoretical study