H2020Individual fellowship2017–2019

coolDips · Direct cooling of dipolar molecules

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-05-01 → 2019-04-30
EU contribution
€159,461
Participants
1
Scheme
MSCA-IF-EF-RI

Lines connect the coordinator with its partners.

Results in brief

Direct cooling of dipolar molecules

The project has focused on the cooling of dipolar molecules, specifically the barium monofluoride radical. Such cold molecules are highly sought-after because they combine complex interactions with a rich internal structure. This is expected to enable novel groundbreaking applications in precision measurement, ultracold chemistry and many-body physics. While these applications are fundamental research, cooling of molecules also sets the stage for the exploitation of molecular quantum effects in future real-life devices, very much in line with the agenda of the EU Quantum Flagship. However, the complexity that makes molecules so interesting also makes them extraordinarily challenging to cool. The goal of the project was to investigate laser cooling, which is a powerful technique to cool atoms to ultracold temperatures. This technique relies on a closed cycling transition, on which many photons from a laser beam can be scattered to realize significant forces. Such cycling transitions naturally occur in many atoms. However, in molecules, they are much more scarce, and it is first necessary to identify and characterize suitable molecular energy levels, selection rules, and potential leakage out of the cycle. The goal of this project was to address exactly these points. The research tasks performed were thus highly challenging and only a few groups worldwide have been able to address similar questions so far. The skills and techniques cultivated by the researcher and students on the project are thus highly valuable for European society and economy.

Data: CORDIS, © European Union

Project objective

Full quantum control of molecules has been an outstanding goal for decades. Cooling molecules provides a most promising answer to address this challenge. With recent progress in experimental quantum physics, such cooling is finally within reach. The aim of this project is to demonstrate the novel technique of molecular laser cooling for a gas of barium monofluoride molecules. Realizing a cold gas of these dipolar molecules will pave the way for a large number of novel and interdisciplinary applications ranging from few- and many-body physics to cold chemistry and tests of fundamental symmetries. The combination of this unique research project with the excellent environment for training, networking and research at the University of Stuttgart will ideally prepare the applicant, Dr. Tim Langen, for a future career as an independent research group leader.

Original text from CORDIS.

Participants

  • UNIVERSITY OF STUTTGART · StuttgartCoordinatorGermany

Links

Data: CORDIS, © European Union