In its initial period, the consortium has focused in building the first practical, optically-driven phonon sources and detectors, including the engineering of phonon lasers to deliver coherent phonons to the rest of the chip, pumped by a continuous wave optical source. The project has concentrated in the design, fabrication and optimisation of main building blocks of the eventual circuit, namely sources, waveguides and detectors.
Many efforts have been dedicated to implementing new simulation methods that can address the problem of coupling the different physics coupling electrons, photons and phonons, which involve very different time scales. The main achievement was the demonstration that the coupling of closed phonon cavities can be used to route, control and modulate phononic cavity modes over large distances between cavities
Regarding the experimental demonstration of isolated components, the consortium has produced coherent sources operating at room temperature at 5 GHz (using optomechanical back‐action) and 0.3 GHz (using self-pulsing). Concerning detectors, following the demonstration of phonon detection and subsequent design of more complex geometries (ongoing), we have proposed an alternative route to characterise them experimentally without the need of having optimized OM sources. It is based on a new scheme in which the phonons can be generated and detected by the excitation of surface acoustic waves (SAW) by means of a piezoelectric material. The structure is composed of Interdigital transducers (IDT) on a piezoelectric AlN layer on top of a Si film/SiO2 layer/Si substrate.
The consortium has also demonstrated regions of coherent state bi- and tri-stability present in the OM phonon sources, which will be exploited for memory purposes. In this context, fast switching (in the few MHz range) between dynamical states has been demonstrated with an external laser heating source.
Concerning integration, the consortium has demonstrated photonic waveguide could be used to couple light to and from the OM cavities, and that it was possible to use the SAW launcher platform to coherently drive the mechanical cavity, then detected thanks to the optomechanical interaction.
There has been a significant number of training (schools, PhD students and senior researchers exchanges among partners, etc) and dissemination activities.