Entangling single photons from independently tuned semiconductor nanoemitters.
basic_science · Level V
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- Record sourced from PubMed, PMID 22839419.
- Also identified by DOI 10.1021/nl301911t.
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Abstract
Quantum communication systems based on nanoscale semiconductor devices is challenged by inhomogeneities from device to device. We address this challenge using ZnMgSe/ZnSe quantum-well nanostructures with local laser-based heating to tune the emission of single impurity-bound exciton emitters in two separate devices. The matched emission in combination with photon bunching enables quantum interference from the devices and allows the postselection of polarization-entangled single photons. The ability to entangle single photons emitted from nanometer-sized sources separated by macroscopic distances provides an essential step for a solid-state realization of a large-scale quantum optical network. This paves the way toward measurement-based entanglement generation between remote electron spins localized at macroscopically separated fluorine impurities.
Medical subject headings
- Nanostructures
- Nanotechnology
- Selenium Compounds
- Semiconductors
- Zinc Compounds