Room temperature single photon emitters are very important resources for photonics and emerging quantum technologies. In this work, we study single photon emission from defect centers in 20 nm zinc oxide (ZnO) nanoparticles. The emitters exhibit bright broadband fluorescence in the red spectral range centered at 640 nm with polarized excitation and emission. The studied emitters showed continuous blinking; however, bleaching can be suppressed using a polymethyl methacrylate coating. Furthermore, hydrogen termination increased the density of single photon emitters. Our results will contribute to the identification of quantum systems in ZnO. © 2014 AIP Publishing LLC
In this article we present size dependent spectroscopic observations of nanocolloids of ZnO. ZnO is ...
Zinc oxide (ZnO) is of great interest in photonic applications due to its wide bandgap (3.37 eV) and...
Crystalline ZnO nanoparticles with nearly uniform size were studied using photoluminescence and Rama...
Room temperature single photon emitters are very important resources for photonics and emerging quan...
Single photon sources are required for a wide range of applications in quantum information science, ...
Zinc oxide (ZnO) is a promising semiconductor that is suitable for bioimaging applications due to it...
© 2015 American Chemical Society. Single photon sources are required for a wide range of application...
Room temperature single-photon emission and quantum characterization is reported for isolated defect...
Investigations that probe defects one at a time offer a unique opportunity to observe properties and...
Point defects in wide bandgap semiconductors are promising candidates for future applications that n...
© 2015 WILEY-VCH Verlag GmbH & Co. Zinc oxide (ZnO) nanoparticles have recently been identified as a...
The intrinsic spectral line widths of defect-related transitions in quantum-confined semiconductor n...
The intrinsic spectral line widths of defect-related transitions in quantum-confined semiconductor n...
Point defects in wide bandgap semiconductors are promising candidates for future applications that n...
University of Technology Sydney. Faculty of Science.Zinc oxide (ZnO) is a large bandgap (3.37 eV at ...
In this article we present size dependent spectroscopic observations of nanocolloids of ZnO. ZnO is ...
Zinc oxide (ZnO) is of great interest in photonic applications due to its wide bandgap (3.37 eV) and...
Crystalline ZnO nanoparticles with nearly uniform size were studied using photoluminescence and Rama...
Room temperature single photon emitters are very important resources for photonics and emerging quan...
Single photon sources are required for a wide range of applications in quantum information science, ...
Zinc oxide (ZnO) is a promising semiconductor that is suitable for bioimaging applications due to it...
© 2015 American Chemical Society. Single photon sources are required for a wide range of application...
Room temperature single-photon emission and quantum characterization is reported for isolated defect...
Investigations that probe defects one at a time offer a unique opportunity to observe properties and...
Point defects in wide bandgap semiconductors are promising candidates for future applications that n...
© 2015 WILEY-VCH Verlag GmbH & Co. Zinc oxide (ZnO) nanoparticles have recently been identified as a...
The intrinsic spectral line widths of defect-related transitions in quantum-confined semiconductor n...
The intrinsic spectral line widths of defect-related transitions in quantum-confined semiconductor n...
Point defects in wide bandgap semiconductors are promising candidates for future applications that n...
University of Technology Sydney. Faculty of Science.Zinc oxide (ZnO) is a large bandgap (3.37 eV at ...
In this article we present size dependent spectroscopic observations of nanocolloids of ZnO. ZnO is ...
Zinc oxide (ZnO) is of great interest in photonic applications due to its wide bandgap (3.37 eV) and...
Crystalline ZnO nanoparticles with nearly uniform size were studied using photoluminescence and Rama...