New Limits on n → n' Transformation from HFIR Cold Neutron Beam
James M. Rogers, Leah J. Broussard, Christopher B. Crawford, Lisa DeBeer-Schmitt, Matthew J. Frost, Francisco M. Gonzalez, Carolyn O. Haviland, Lawrence Heilbronn, Erik B. Iverson, Yuri Kamyshkov, Mubasshir Khan, Andrew Mullins, David Milstead, Linus B. Persson, Cary Rock, Valentina Santoro, Alexander Saunders, Shaun Vavra, Nathan D. Whittington
Abstract
Hypothetical neutron n to sterile neutron n' transformations would violate baryon number B and point to the nature of Dark Matter. We performed a new search for n → n' using an intense cold neutron beam from the High Flux Isotope Reactor at Oak Ridge National Laboratory. We used a theoretical model that describes the transformation n → n' with two parameters: a small mass difference Δm between the interaction states n and n' and a mixing vacuum angle θ0. A thin absorbing cadmium wafer was used in the center of the superconducting 6.6 T magnet which provided a large gradient for the non-adiabatic n → n' transition. No signal was observed above background in the 3He neutron detector 20 meters downstream of the magnet. This result gives an order of magnitude improvement in the lower limit for the probability 2θ02 of the n → n' transformation in vacuum in the range of Δm between 0.1 neV and 1000 neV.
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