Oded Heber

Weak interaction studies at SARAF

Ben Ohayon [1], Joel Chocron [1], Tsviki Hirsh [2], Ayala Glick-Magid [1], Yonatan Mishnayot [1,2], Ish Mukul [3], Hitesh Rahangdale [1], Sergei Vaintraub [2], Oded Heber [4], Doron Gazit [1], Guy Ron [1]

Abstract

We review the current status of the radioisotopes program at the Soreq Applied Research Accelerator Facility (SARAF), where we utilize an electrostatic-ion-beam trap and a magneto-optical trap for studying the nuclear $β$-decay from trapped radioactive atoms and ions. The differential energy spectra of $β$'s and recoil ions emerging from the decay is sensitive to beyond standard model interactions and is complementary to high energy searches. The completed facility SARAF-II will be one of the world's most powerful deuteron, proton and fast neutron sources, producing light radioactive isotopes in unprecedented amounts, needed for obtaining enough statistics for a high precision measurement.

Phase protection of Fano-Feshbach resonances

Alexander Blech [1], Yuval Shagam [2], Nicolas Hölsch, Prerna Paliwal [2], Wojciech Skomorowski [1], John W. Rosenberg [2], Natan Bibelnik [2,3], Oded Heber, Daniel M. Reich [1], Edvardas Narevicius [2], Christiane P. Koch [1,2]

Abstract

Decay of bound states due to coupling with free particle states is a general phenomenon occurring at energy scales from MeV in nuclear physics to peV in ultracold atomic gases. Such a coupling gives rise to Fano-Feshbach resonances (FFR) that have become key to understanding and controlling interactions - in ultracold atomic gases, but also between quasiparticles such as microcavity polaritons. The energy positions of FFR were shown to follow quantum chaotic statistics. In contrast, lifetimes which are the fundamental property of a decaying state, have so far escaped a similarly comprehensive understanding. Here we show that a bound state, despite being resonantly coupled to a scattering state, becomes protected from decay whenever the relative phase is a multiple of $π$. We observe this phenomenon by measuring lifetimes spanning four orders of magnitude for FFR of spin-orbit excited molecular ions with merged beam and electrostatic trap experiments. Our results provide a blueprint for identifying naturally long-lived states in a decaying quantum system.

Transverse Kinematics of Ion Stored in an Electrostatic Ion Beam Trap

Dina Attia, Daniel Strasser, Oded Heber, Michael Rappaport, Daniel Zajfman

Abstract

We present experimental results, as well as numerical simulations, for the transverse velocity distribution of ions stored in an electrostatic ion beam trap. The measurements indicate that the transverse velocity spread is about 1% of the longitudinal velocity, and that the ions fill the whole transverse stable phase space. We also demonstrate that ion losses from the trap due to multiple scattering with molecules from the residual gas is an important factor limiting the lifetime of the beam.