Jonas Karthein

Electroweak Nuclear Properties from Single Molecular Ions in a Penning Trap

Jonas Karthein, Silviu-Marian Udrescu, Scott B. Moroch, Ivana Belosevic, Klaus Blaum, Anastasia Borschevsky, Yuly Chamorro, David DeMille, Jens Dilling, Ronald F. Garcia Ruiz, Nick R. Hutzler, Lukáš F. Pašteka, Ryan Ringle

Abstract

We present a novel technique to probe electroweak nuclear properties by measuring parity violation (PV) in single molecular ions in a Penning trap. The trap's strong magnetic field Zeeman shifts opposite-parity rotational and hyperfine molecular states into near degeneracy. The weak interaction-induced mixing between these degenerate states can be larger than in atoms by more than twelve orders of magnitude, thereby vastly amplifying PV effects. The single molecule sensitivity would be suitable for applications to nuclei across the nuclear chart, including rare and unstable nuclei.

Long-term monitoring of the internal energy distribution of isolated cluster systems

Christian Breitenfeldt [1,2], Klaus Blaum [2], Sebastian George [2,3], Jürgen Göck, Gregorio Guzmán-Ramírez, Jonas Karthein [2], Thomas Kolling, Michael Lange [2], Sebastian Menk [2], Christian Meyer [2], Jennifer Mohrbach, Gereon Niedner-Schatteburg, Dirk Schwalm [2,5], Lutz Schweikhard [1], Andreas Wolf [2]

Abstract

A method is presented to monitor the internal energy distribution of cluster anions via delayed electron detachment by pulsed photoexcitation and demonstrated on Co$_4{}^-$ in an electrostatic ion beam trap. In cryogenic operation, we calibrate the detachment delay to internal energy. By laser frequency scans, at room temperature, we reconstruct the time-dependent internal energy distribution of the clusters. The mean energies of ensembles from a cold and a hot ion source both approach thermal equilibrium. Our data yield a radiative emission law and the absorptivity of the cluster for thermal radiation.