MWGRAV · High Sensitivity Matter-Wave Gravitation Sensors
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2016-04-15 → 2018-07-31
- EU contribution
- €185,076
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
High Sensitivity Matter-Wave Gravitation Sensors
Context of the project. Atom interferometers offer interesting applications in geophysics (gravimetry, gradiometry, Earth rotation rate measurements), inertial sensing (e.g. submarine positioning), metrology (new definition of the kilogram) and fundamental physics (tests of the standard model, tests of general relativity). The field of atom interferometry (AI) now enters a phase where extreme sensitivity levels must be demonstrated, in order to enlarge the potential applications. In particular, several theoretical proposals on the application of AI to gravitational wave (GW) detection have been published in the last years. However, there is an important gap between the current sensitivities of atom interferometers and the requirements for using AI in future GW astronomy facilities. The proposed MSC project aimed at studying new atom and optical interferometry techniques, in order to significantly improve the performances of matter-wave gravitation sensors. On this path, major breakthroughs are also expected in metrology, geophysics and inertial navigation. Various international groups are developing and operating experiments to improve the performances of matter-wave inertial sensors. In particular, they have started to study the gain in sensitivity associated with the use of new atom optics techniques, such as large momentum transfer (LMT) beam splitters, delta-kick cooling or ultracold atoms. Through this MSC action, the Experienced Researcher was intended to strengthen the leading position of the SYRTE laboratory in the field of AI metrology, by studying advanced AI and optical interferometry techniques and implementing them on a state of the art atomic inertial sensor. Objectives of the action. The project was intended to proceed in two steps. First, the Experienced Researcher was intended to push the state of the art of atom interferometer performances by demonstrating a two order of magnitude improvement to the inertial sensitivity of a cold atom gyroscope/accelerometer based at the SYRTE laboratory. In particular, Experienced Researcher would implement a technique to avoid the dead time between consecutive measurements occurring in cold atom sensors, which are currently an important limit of AI to several applications, in particular inertial navigation. Second, she would study the potentially important performance improvement of using an optical cavity to interrogate the atoms in the interferometer. We aimed at improving by more than one order of magnitude the interferometer sensitivity by using multiple photon diffraction to coherently split the atomic waves. The Experienced Researcher would then study the physics of the atom interferometer coupled to the optical cavity, both experimentally and theoretically, which has hardly been investigated by other groups. One aim of this MSC action was to develop the researcher towards being an independent scientist under the mentorship of her supervisors. The researcher would acquire new scientific and management skills, and learn how to develop her theoretical ideas to experimental realisation and publication. Therefore, a further aim under the host’s guidance would be to develop the researcher’s publication record to be commensurate with her experience upon the completion of the MSC fellowship. The proposed research was intended to be both of experimental nature by implementing new techniques to improve the sensitivity of the SYRTE cold atom gyroscope/accelerometer, and of theoretical nature by modelling the limits to the sensitivity of the interferometer and the interrogation of the atoms by the optical cavity. Within the Atom Interferometry group at SYRTE, the Experienced Researcher would work on an existing experiment which has been setup and optimized since 2009. This setup would allow implementing and testing various techniques on a platform which represents the state of the art in terms of rotation rate sensitivity levels for cold atom sensors. She would then study new techniques for future high sensitivity matter-wave sensors.
Data: CORDIS, © European Union
Project objective
After more than 20 years of fundamental research, atom interferometers have reached sensitivity and accuracy levels competing with or beating inertial sensors based on different technologies. Atom interferometers offer interesting applications in geophysics, inertial sensing, metrology and tests of fundamental physics. Recently, a growing interest of the application of atom interferometry to gravitational wave detection and geophysics has been drawn. These applications beyond the pure scope of atomic physics require the development of more performant atomic inertial sensors, particularly for the use of matter-wave interferometers in gravitational wave detectors, where sensitivity levels far beyond the state of the art must be demonstrated. The proposed project aims at contributing filling this gap by studying new atom and optical interferometry techniques, in order to significantly improve the performances of matter -wave gravitation sensors. The proposed MSC action will significantly impact the design of a new class of matter-wave gravitation sensors, which are under study in several countries in the world. In the excellence metrology environment of SYRTE, the MSC applicant will foster challenging developments in atom interferometers, with a high impact on the communities of atomic physics, geophysics and gravitational wave detection. On this path, the Experienced Researcher will benefit from an original and efficient training by the host group through knowledge transfer, acquisition of new scientific and management skills, enlargement of her professional network and development of her track record.
Original text from CORDIS.
Participants
- OBSERVATOIRE DE PARIS · ParisCoordinatorFrance
Links
Data: CORDIS, © European Union
