EXO is a ton-class neutrino-less double beta decay experiment employing 136-Xe and is unique among such experiments as it utilizes a novel technique to tag the atomic species produced in the final state (Ba) of the double beta decay using laser spectroscopy. This technique has the promise of drastically reducing radioactive backgrounds, providing a clean and un-ambiguous measurement with unprecedented sensitivity. In the last few years, EXO R&D has been equally divided between the construction of a 200 kg intermediate scale detector (EXO-200) without Ba tagging and the development of the Ba tagging system. EXO-200 construction is now nearing completion.

The work proposed here concentrates on Ba extraction from the liquid xenon (LXe) and identification. Some new ideas, presented here, have the potential of providing the key for the design of the full scale EXO experiment. Previous R&D has resulted in an ion trap capable of clear single Ba ion detection in the presence of a cooling gas, and the initial experimentation with a number of Ba transfer techniques. The R&D proposed here will revolve around three parallel themes, each to be developed by one of the three collaborating institutions. The conclusion of EXO Ba tagging R&D, along with the successful operation of the EXO-200 detector, will result in the design of a formidable next generation double beta detector to be sited at an underground laboratory in the near future.

The techniques to be developed in this project span a broad range of topics, from nuclear and particle astrophysics, to AMO, surface physics and material science. This research, if successful, is likely to be applicable to other problems in science and technology, where the high efficiency transfer and identification of single atoms would be of interest. Examples include trace analysis for homeland security applications and the detection of rare phenomena.

Agency
National Science Foundation (NSF)
Institute
Division of Physics (PHY)
Application #
0652690
Program Officer
James J. Whitmore
Project Start
Project End
Budget Start
2007-09-01
Budget End
2010-08-31
Support Year
Fiscal Year
2006
Total Cost
$255,520
Indirect Cost
Name
University of Maryland College Park
Department
Type
DUNS #
City
College Park
State
MD
Country
United States
Zip Code
20742