English

Imaging individual barium atoms in solid xenon for barium tagging in nEXO

Instrumentation and Detectors 2018-12-14 v2 Nuclear Experiment

Abstract

The search for neutrinoless double beta decay probes the fundamental properties of neutrinos, including whether or not the neutrino and antineutrino are distinct. Double beta detectors are large and expensive, so background reduction is essential for extracting the highest sensitivity. The identification, or 'tagging', of the 136^{136}Ba daughter atom from double beta decay of 136^{136}Xe provides a technique for eliminating backgrounds in the nEXO neutrinoless double beta decay experiment. The tagging scheme studied in this work utilizes a cryogenic probe to trap the barium atom in solid xenon, where the barium atom is tagged via fluorescence imaging in the solid xenon matrix. Here we demonstrate imaging and counting of individual atoms of barium in solid xenon by scanning a focused laser across a solid xenon matrix deposited on a sapphire window. When the laser sits on an individual atom, the fluorescence persists for \sim30~s before dropping abruptly to the background level, a clear confirmation of one-atom imaging. No barium fluorescence persists following evaporation of a barium deposit to a limit of \leq0.16\%. This is the first time that single atoms have been imaged in solid noble element. It establishes the basic principle of a barium tagging technique for nEXO.

Keywords

Cite

@article{arxiv.1806.10694,
  title  = {Imaging individual barium atoms in solid xenon for barium tagging in nEXO},
  author = {C. Chambers and T. Walton and D. Fairbank and A. Craycraft and D. R. Yahne and J. Todd and A. Iverson and W. Fairbank and A. Alamare and J. B. Albert and G. Anton and I. J. Arnquist and I. Badhrees and P. S. Barbeau and D. Beck and V. Belov and T. Bhatta and F. Bourque and J. P. Brodsky and E. Brown and T. Brunner and A. Burenkov and G. F. Cao and L. Cao and W. R. Cen and S. A. Charlebois and M. Chiu and B. Cleveland and M. Coon and W. Cree and M. Côté and J. Dalmasson and T. Daniels and L. Darroch and S. J. Daugherty and J. Daughhetee and S. Delaquis and A. Der Mesrobian-Kabakian and R. DeVoe and J. Dilling and Y. Y. Ding and M. J. Dolinski and A. Dragone and J. Echevers and L. Fabris and J. Farine and S. Feyzbakhsh and R. Fontaine and D. Fudenberg and G. Giacomini and R. Gornea and G. Gratta and E. V. Hansen and M. Heffner and E. W. Hoppe and J. Hößl and A. House and P. Hufschmidt and M. Hughes and Y. Ito and A. Jamil and C. Jessiman and M. J. Jewell and X. S. Jiang and A. Karelin and L. J. Kaufman and D. Kodroff and T. Koffas and S. Kravitz and R. Krücken and A. Kuchenkov and K. S. Kumar and Y. Lan and A. Larson and D. S. Leonard and G. Li and S. Li and Z. Li and C. Licciardi and Y. H. Lin and P. Lv and R. MacLellan and T. Michel and B. Mong and D. C. Moore and K. Murray and R. J. Newby and Z. Ning and O. Njoya and F. Nolet and O. Nusair and K. Odgers and A. Odian and M. Oriunno and J. L. Orrell and G. S. Ortega and I. Ostrovskiy and C. T. Overman and S. Parent and A. Piepke and A. Pocar and J. -F. Pratte and D. Qiu and V. Radeka and E. Raguzin and T. Rao and S. Rescia and F. Retière and A. Robinson and T. Rossignol and P. C. Rowson and N. Roy and R. Saldanha and S. Sangiorgio and S. Schmidt and J. Schneider and A. Schubert and D. Sinclair and K. Skarpaas VIII and A. K. Soma and G. St-Hilaire and V. Stekhanov and T. Stiegler and X. L. Sun and M. Tarka and T. Tolba and T. I. Totev. R. Tsang and T. Tsang and F. Vachon and B. Veenstra and V. Veeraraghavan and G. Visser and J. -L. Vuilleumier and M. Wagenpfeil and Q. Wang and J. Watkins and M. Weber and W. Wei and L. J. Wen and U. Wichoski and G. Wrede and S. X. Wu and W. H. Wu and Q. Xia and L. Yang and Y. -R. Yen and O. Zeldovich and X. Zhang and J. Zhao and Y. Zhou and T. Ziegler},
  journal= {arXiv preprint arXiv:1806.10694},
  year   = {2018}
}