We have developed a process to mass-produce quantum dot micropillar cavities using direct-write lithography. This technique allows us to achieve mass patterning of high-aspect ratio pillars with vertical, smooth sidewalls maintaining a high quality factor for diameters below 2.0 μm. Encapsulating the cavities in a thin layer of oxide (Ta2O5) prevents oxidation in the atmosphere, preserving the optical properties of the cavity over months of ambient exposure. We confirm that single dots in the cavities can be deterministically excited to create high-purity indistinguishable single photons with interference visibility (0.941 ± 0.008)
We show that the polarization of the emission of a single quantum dot embedded within a microcavity ...
The authors introduce a microcavity light-emitting diode (LED) structure that uses submicrometer oxi...
We demonstrate the fabrication and characterization of on-chip vertically-emitting SiNx/Au nanopatch...
We have developed a process to mass-produce quantum dot micropillar cavities using direct-write lith...
We have developed a process to mass-produce quantum dot micropillar cavities using direct-write lith...
We demonstrate that single photons can be generated from single InAs/GaAs quantum dots in photolitho...
This article may be downloaded for personal use only. Any other use requires prior permission of the...
We report on the realization of an array of 28 × 28 mesas with site-controlled InGaAs quantum dots a...
Enhancement of single photon source emission through cavity quantum electrodynamics is key to the re...
We report on the realization of a dense, large-scale array of 900 quantum dot micropillar cavities w...
Efficient sources of indistinguishable single photons are a key resource for various applications in...
Today, the world is on the verge of a new technological breakthrough that has been called the “secon...
Sources of single and entangled photons on demand are attracting strong attention, in view of their ...
This work was supported by the German Research Foundation (DFG) under Grant Nos. RE2974=9 - 1 and SC...
This work was financially supported by the German Ministry of Education and Research (BMBF) via the ...
We show that the polarization of the emission of a single quantum dot embedded within a microcavity ...
The authors introduce a microcavity light-emitting diode (LED) structure that uses submicrometer oxi...
We demonstrate the fabrication and characterization of on-chip vertically-emitting SiNx/Au nanopatch...
We have developed a process to mass-produce quantum dot micropillar cavities using direct-write lith...
We have developed a process to mass-produce quantum dot micropillar cavities using direct-write lith...
We demonstrate that single photons can be generated from single InAs/GaAs quantum dots in photolitho...
This article may be downloaded for personal use only. Any other use requires prior permission of the...
We report on the realization of an array of 28 × 28 mesas with site-controlled InGaAs quantum dots a...
Enhancement of single photon source emission through cavity quantum electrodynamics is key to the re...
We report on the realization of a dense, large-scale array of 900 quantum dot micropillar cavities w...
Efficient sources of indistinguishable single photons are a key resource for various applications in...
Today, the world is on the verge of a new technological breakthrough that has been called the “secon...
Sources of single and entangled photons on demand are attracting strong attention, in view of their ...
This work was supported by the German Research Foundation (DFG) under Grant Nos. RE2974=9 - 1 and SC...
This work was financially supported by the German Ministry of Education and Research (BMBF) via the ...
We show that the polarization of the emission of a single quantum dot embedded within a microcavity ...
The authors introduce a microcavity light-emitting diode (LED) structure that uses submicrometer oxi...
We demonstrate the fabrication and characterization of on-chip vertically-emitting SiNx/Au nanopatch...