Sort by
Refine Your Search
-
Listed
-
Category
-
Program
-
Field
-
of the complex III-V semiconductor stack forming the laser and transferred onto a 300 mm substrate by molecular bonding. A simplified example of the laser structure is: InP (4 µm) / GaAlInAs quantum wells (400 nm
-
the cavity provides insight into the physical properties of the condensate. Experimental research will be conducted using semiconductor cavities fabricated using the nanotechnology resources available at C2N
-
platform for the study of artificial quantum materials based on large semiconductor quantum dot lattices. By combining extended one-dimensional and bilinear arrays with high-sensitivity RF admittance
-
to the evaluation of technological building blocks, test vehicles and components intended for demonstrators. Where to apply Website https://emploi.cnrs.fr/Offres/CDD/UMR8520-FARMED-021/Default.aspx Requirements
-
fabrication, cryogenic control electronics, and quantum dot-based quantum information processing. The successful candidate will: • Operate and characterize bilinear arrays of semiconductor quantum dot qubits in
-
on semiconductor heterostructures, using design techniques similar to the ones employed for quantum cascade lasers, as well as electromagnetic design of the microcavity array (an array of metal-insulator-metal
-
. The activity of the Research axis 3 falls into the domain of quantum nanophotonics. We are first interested in nanosources of light: - colloidal semiconductor nanocrystals based on CdSe, at the single object
-
. 2018, doi: 10.1021/acs.nanolett.9b01583. [3] K. H. Au-Yeung et al., “Atomic-Scale Quantum Control of Single Spin Defects in a Two-Dimensional Semiconductor,” Feb. 25, 2026. [4] P. Dreher et al
-
surface based on elementary or unit cells incorporating active materials (electrically or optically), will require the development of technologies capable of replacing semiconductor components distributed
-
to Excitons: Ultrafast Dynamics and Fine Structure in Metal Halide Perovskites Metal halide perovskites (MHPs) have emerged as a disruptive class of semiconductors, combining exceptional optoelectronic