Mitigating radioactivity in a university laboratory for laser cooling radium-226 containing molecules
ORAL
Abstract
Radioactive molecules containing octupole-deformed radium (Ra) nuclei are predicted to amplify the parity (P) and time-reversal (T) symmetry-violating nuclear Schiff moment by more than six orders of magnitude compared to spherical nuclei in atoms. Ultra-sensitive measurements with 225Ra (τ1/2 = 15d) containing molecules begin with the less radioactive isotope, 226Ra (τ1/2 = 1600yr). This enables rapid prototyping in university laboratories with cryogenic buffer gas beams (T ~ 2K), an essential tool for spectroscopy, laser cooling, and optical trapping of molecules. We are currently building an experiment to laser cool beams of 226RaF and 226RaOH, produced by laser ablation of ~10-100 uCi samples of 226Ra. In this talk, we present our experimental strategies for overcoming our primary radioactivity hazards: radium contamination and radon production. Our protocols leverage charcoal filters, cryopumping, negative pressure containment, and a dedicated exhaust. We also identify a pathway toward handling ~1 mCi samples of radium in a university lab-scale environment. Our work will enable laser cooling and trapping of 226Ra-containing molecules, a key step toward nuclear Schiff moment measurements with 225Ra-containing molecules at the Facility for Rare Isotope Beams (FRIB).
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Presenters
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Shungo Fukaya
MIT/Harvard, Massachusetts Institute of Technology
Authors
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Shungo Fukaya
MIT/Harvard, Massachusetts Institute of Technology
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Arian Jadbabaie
Massachusetts Institute of Technology, Harvard University
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Sepehr Ebadi
MIT/Harvard
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Matteo Fulghieri
MIT/Harvard
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Avneesh Verma
MIT/Harvard
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Karina Khusainova
Massachusetts Institute of Technology, Harvard University, Vanderbilt University
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John M Doyle
Harvard University
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Ronald Fernando F Garcia Ruiz
MIT Laboratory for Nuclear Science, MIT
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Nicholas R Hutzler
Caltech