Detection of the orbital crossing and its optical clock transition in Pr
arXiv:1910.09010 · doi:10.1038/s41467-019-13406-9
Abstract
Recent theoretical works have proposed atomic clocks based on narrow optical transitions in highly charged ions. The most interesting candidates for searches of new physics are those which occur at rare orbital crossings where the shell structure of the periodic table is reordered. There are only three such crossings expected to be accessible in highly charged ions, and hitherto none have been observed as both experiment and theory have proven difficult. In this work we observe an orbital crossing in highly charged ions for the first time, in a system chosen to be tractable from both sides: Pr. We present electron beam ion trap measurements of its spectra, including the inter-configuration lines that reveal the sought-after crossing. The proposed nHz-wide clock line, found to be at 452.334(1) nm, proceeds through hyperfine admixture of its upper state with an E2-decaying level. With state-of-the-art calculations we show that it has a very high sensitivity to new physics and extremely low sensitivity to external perturbations, making it a unique candidate for proposed precision studies.
Director's Cut
References in corpus (9)
- An Al quantum-logic clock with systematic uncertainty below
- Observation of the 1S0 - 3P0 clock transition in 27Al+
- Enhanced laboratory sensitivity to variation of the fine-structure constant using highly-charged ions
- Highly-charged ions for atomic clocks, quantum information, and search for -variation
- A generalized Ramsey excitation scheme with suppressed light shift
- Relativistic corrections to transition frequencies of Ag I, Dy I, Ho I, Yb II, Yb III, Au I and Hg II and search for variation of the fine structure constant
- Highly charged ions with E1, M1, and E2 transitions within laser range
- Atomic properties of Cd-like and Sn-like ions for the development of frequency standards and search for the variation of the fine-structure constant
- Visible transitions in Ag-like and Cd-like lanthanide ions