Adriana Pálffy

Probing Nuclear Excitation by Electron Capture in an Electron Beam Ion Trap with Non-destructive Isomer Detection via Precision Mass Spectrometry

Bingsheng Tu [1], Nan Xue [1,2,3], Jialin Liu [1], Qi Guo [1], Yuanbin Wu [4], Zuoye Liu [3,5], Adriana Pálffy, Yang Yang [1], Ke Yao [1], Baoren Wei [1], Yaming Zou [1], Xiangjin Kong [1,2], Yu-Gang Ma [1,2]

Abstract

Nuclear excitation by electron capture (NEEC) is an important nuclear excitation mechanism which still lacks conclusive experimental verification. This is primarily attributed to strong background x-/$γ$-ray noise and competing nuclear excitation processes which would overshadow the signals in various environments that NEEC takes place. Here, we propose an experimental approach to observe the NEEC process within a background-free environment. Through collisions with a highly-compressed mono-energetic electron beam in an electron beam ion trap, nuclei may get excited to a long-lived isomeric state via the NEEC process. Subsequently, ions can be extracted and Penning-trap mass spectrometry employed to unambiguously detect the isomer. Our study focuses on the promising candidate $^{189}\mathrm{Os}$, demonstrating measurable detection rates of the NEEC process and discussing the feasibility of the proposed approach. This new approach for observing the NEEC process may be realized in the near future.

Photoexcitation of the $^{229}$Th nuclear clock transition using twisted light

Tobias Kirschbaum [1], Thorsten Schumm [2,1], Adriana Pálffy

Abstract

The $^{229}$Th nucleus has a unique transition at only 8 eV which could be used for a novel nuclear clock. We investigate theoretically the prospects of driving this transition with vortex light beams carrying orbital angular momentum. Numerical results are presented for two experimental configurations which are promising for the design of the planned nuclear clock: a trapped ion setup and a large ensemble of nuclei doped into CaF$_2$ crystals which are transparent in the frequency range of the nuclear transition. We discuss the feasibility of the vortex beam nuclear excitation and compare the excitation features with the case of plane wave beams.

Electronic bridge excitation in highly charged Th-229 ions

Pavlo V. Bilous [1], Hendrik Bekker [1,2], Julian Berengut [3,1], Benedict Seiferle [4], Lars von der Wense [4], Peter G. Thirolf [4], Thomas Pfeifer [1], José R. Crespo López-Urrutia, Adriana Pálffy

Abstract

The excitation of the 8 eV $^{229m}$Th isomer through the electronic bridge mechanism in highly charged ions is investigated theoretically. By exploiting the rich level scheme of open $4f$ orbitals and the robustness of highly charged ions against photoionization, a pulsed high-intensity optical laser can be used to efficiently drive the nuclear transition by coupling it to the electronic shell. We show how to implement a promising electronic bridge scheme in an electron beam ion trap starting from a metastable electronic state. This setup would avoid the need for a tunable vacuum ultraviolet laser. Based on our theoretical predictions, determining the isomer energy with an uncertainty of $10^{-5}$ eV could be achieved in one day of measurement time using realistic laser parameters.