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Updated: May 26, 2026

Resonance Fluorescence of an InGaAs Quantum Dot in a Planar Cavity Using Orthogonal Excitation and Detection
Published on: October 13, 2017
Extraordinary electron transmission through a periodic array of quantum dots
L S Petrosyan1, A S Kirakosyan, T V Shahbazyan
1Department of Medical Physics, Yerevan State Medical University, 2 Koryun Street, Yerevan, 0025, Armenia and Department of Physics, Jackson State University, Jackson, Mississippi 39217 USA.
We found that electron transmission through quantum dot arrays is greatly enhanced when the electron
Area of Science:
- Solid State Physics
- Quantum Mechanics
- Materials Science
Background:
- Understanding electron transport in nanostructures is crucial for developing advanced electronic devices.
- Periodic arrays of quantum dots (QDs) offer unique electronic properties due to quantum confinement and inter-dot coupling.
Purpose of the Study:
- To investigate the phenomenon of enhanced electron conductance in a periodic array of quantum dots.
- To elucidate the underlying physical mechanism responsible for this conductance enhancement.
Main Methods:
- Theoretical modeling of electron transmission through a periodic array of QDs.
- Numerical simulations considering coherent coupling between QDs and semiconductor leads.
- Analysis of system eigenstates and their delocalization properties.
Main Results:
- Off-resonant conductance per quantum dot (QD) is enhanced by several orders of magnitude compared to single-QD conductance.
- This enhancement occurs when the Fermi wavelength of tunneling electrons exceeds the array lattice constant.
- The key mechanism identified is the delocalization of a fraction of system eigenstates.
Conclusions:
- Coherent coupling of QDs via the electron continuum in leads leads to significant conductance enhancement.
- Delocalized eigenstates play a critical role in facilitating electron transport through the QD array.
- This finding has implications for the design of novel electronic components utilizing quantum dot arrays.
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