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JOURNALS // Pis'ma v Zhurnal Èksperimental'noi i Teoreticheskoi Fiziki // Archive

Pis'ma v Zh. Èksper. Teoret. Fiz., 2025 Volume 121, Issue 5, Pages 365–374 (Mi jetpl7457)

This article is cited in 1 paper

OPTICS AND NUCLEAR PHYSICS

Optical clock based on two-photon spectroscopy of the nuclear transition in a $^{229}$Th ion in a monochromatic field

V. I. Yudinabc, A. V. Taichenachevbc, O. N. Prudnikovbc, M. Yu. Basalaevbac, A. N. Goncharovbc, S. V. Chepurovc, V. G. Pal'chikovde

a Novosibirsk State Technical University, Novosibirsk, 630073 Russia
b Novosibirsk State University, Novosibirsk, 630090 Russia
c Institute of Laser Physics, Siberian Branch, Russian Academy of Sciences, Novosibirsk, 630090 Russia
d National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), Moscow, 115409 Russia
e All-Russian Research Institute of Physical and Radio Engineering Measurements, Mendeleevo, Moscow region, 141570 Russia

Abstract: The possibility of two-photon laser spectroscopy of the nuclear clock transition (148.38 nm) in the $^{229}$Th isotope has been investigated using an intense monochromatic laser field at twice the wavelength (296.76 nm). Our estimates show that due to the electron bridge process in the doubly ionized ion $^{229}$Th$^{2+}$ the sufficient intensity of a continuous laser field is about 10–100 kW/cm$^2$, which is within the reach of modern laser systems. This unique possibility is an result of the presence in the electronic spectrum of the ion $^{229}$Th$^{2+}$ of an exceptionally close intermediate (for the two-photon transition) energy level, forming a strong dipole ($E1$) transition with the ground state at the wavelength of 297.86 nm, which differs from the probe field wavelength (296.76 nm) by only 1.1 nm. The obtained results can be used for the practical creation of ultra-precise nuclear optical clocks based on thorium-229 ions without using vacuum ultraviolet. Moreover, we develop an alternative approach to the description of the electron bridge phenomenon in an isolated ion (atom) using the hyperfine interaction operator, that is important for the general quantum theory of an atom. In particular, this approach shows that the contribution to the electron bridge from the nuclear quadrupole moment can be comparable to the contribution from the nuclear magnetic moment.

Received: 16.01.2025
Revised: 16.01.2025
Accepted: 22.01.2025

DOI: 10.31857/S0370274X25030069


 English version:
Journal of Experimental and Theoretical Physics Letters, 2025, 121:5, 345–353


© Steklov Math. Inst. of RAS, 2026