International audienceWe introduce a calibration method to quantify the impact of external mechanical stress on the emission wavelength of distinct quantum dots (QDs). Specifically, these emitters are integrated in a cross-section of a semiconductor core wire and experience a longitudinal strain that is induced by an amorphous capping shell. Detailed numerical simulations show that, thanks to the shell mechanical isotropy, the strain in the core is uniform, which enables a direct comparison of the QD responses. Moreover, the core strain is determined in situ by an optical measurement, yielding reliable values for the QD emission tuning slope. This calibration technique is applied to self-assembled InAs QDs submitted to incremental elongatio...
The strain-dependent photoluminescence (PL) properties of quantum dots (QDs) make them potential str...
Tuning light emission in bulk and quantum structures by strain constitutes a complementary method to...
Discovered recently, tensile-strained quantum dots are optically active, defect-free nanostructures....
International audienceWe introduce a calibration method to quantify the impact of external mechanica...
We have studied the effects of strain on individual self-assembled quantum dots (QDs) exemplified by...
We report on photoreflectance (PR) measurements in the 0.8-1.5 eV photon energy range and at tempera...
InAs/GaAs quantum dot systems can emit light at the wavelengths above 1.3 mu m by covering the InAs ...
Polymer or glass films impregnated with quantum dots (QDs) have potential applications for mesoscale...
We perform an experimental and computational study of the effects of external stress and intermixing...
This work reports on theoretical and experimental investigation of the impact of InAs quantum dots (...
Abstract We show that a piezoelectric actuator can be used to apply uniaxial stress to a layer of se...
InAs/GaAs quantum dot systems can emit light at the wavelengths above 1.3μm by covering the InAs qua...
We show that optically active quantum dots (QDs) embedded in MBE-grown GaAs/AlGaAs core-shell nanowi...
An array of semiconductor quantum dots is studied computationally using an approach that couples lin...
Single self-assembled semiconductor quantum dots (QDs) are able to emit single-photons and entangled...
The strain-dependent photoluminescence (PL) properties of quantum dots (QDs) make them potential str...
Tuning light emission in bulk and quantum structures by strain constitutes a complementary method to...
Discovered recently, tensile-strained quantum dots are optically active, defect-free nanostructures....
International audienceWe introduce a calibration method to quantify the impact of external mechanica...
We have studied the effects of strain on individual self-assembled quantum dots (QDs) exemplified by...
We report on photoreflectance (PR) measurements in the 0.8-1.5 eV photon energy range and at tempera...
InAs/GaAs quantum dot systems can emit light at the wavelengths above 1.3 mu m by covering the InAs ...
Polymer or glass films impregnated with quantum dots (QDs) have potential applications for mesoscale...
We perform an experimental and computational study of the effects of external stress and intermixing...
This work reports on theoretical and experimental investigation of the impact of InAs quantum dots (...
Abstract We show that a piezoelectric actuator can be used to apply uniaxial stress to a layer of se...
InAs/GaAs quantum dot systems can emit light at the wavelengths above 1.3μm by covering the InAs qua...
We show that optically active quantum dots (QDs) embedded in MBE-grown GaAs/AlGaAs core-shell nanowi...
An array of semiconductor quantum dots is studied computationally using an approach that couples lin...
Single self-assembled semiconductor quantum dots (QDs) are able to emit single-photons and entangled...
The strain-dependent photoluminescence (PL) properties of quantum dots (QDs) make them potential str...
Tuning light emission in bulk and quantum structures by strain constitutes a complementary method to...
Discovered recently, tensile-strained quantum dots are optically active, defect-free nanostructures....