Nature· 2026Q1
A thorium-229 optical nuclear clock with feedback loop
- 4citations
- Q1SCImago
- 2026year
Short summary
Researchers built an optical nuclear clock using thorium-229 embedded in a calcium fluoride crystal, achieving a fractional frequency instability of 3×10⁻¹²/√(τ/s) and using it to constrain ultralight dark matter models.
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Key points
- A thorium-229 nuclear clock was built by stabilizing a laser to the 148-nm nuclear transition using feedback spectroscopy.
- The thorium-229 nuclei are embedded in a millimetre-sized, room-temperature calcium fluoride crystal.
- The clock achieved a fractional frequency instability of 3×10⁻¹²/√(τ/s), approaching 10⁻¹⁵ over 1 day.
- The nuclear clock was used to constrain ultralight dark matter models by searching for periodic fluctuations and drifts in nuclear transition energy.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract The laser-accessible nuclear transition in the thorium-229 isotope has been identified as a candidate for realizing an optical nuclear clock 1 that might outperform current optical clocks based on electron-shell transitions in atoms or ions 2 . It is expected to be more robust against external perturbations 3,4 and to provide enhanced sensitivity in clock-based tests of the fundamental principles of physics 5,6 . Here we realize a thorium-229 nuclear clock by stabilizing a continuous-wave laser to the 148-nm nuclear transition with rapid feedback based on absorption spectroscopy 7 . The thorium-229 nuclei are embedded in a millimetre-sized, room-temperature calcium fluoride crystal. A subharmonic of the 148-nm radiation is continuously compared with a Yb + single-ion clock. The nuclear clock shows a shot-noise-limited fractional frequency instability of $$3\times 1{0}^{-12}/\sqrt{\tau /{\rm{s}}}$$ 3 × 1 0 − 12 / τ / s where τ is the averaging time, approaching 10 −15 instabilities over 1 day of operation. Improvements to the instability by several orders of magnitude are projected for future devices. We use the nuclear clock to constrain models of ultralight dark matter by searching for periodic fluctuations and slow drifts in the nuclear transition energy, on timescales between 20 s and 1 day. Benefitting from the enhanced sensitivity of the thorium-229 transition, these constraints compete with the best atomic clocks concerning dark matter coupling to photons and go beyond previous measurements regarding coupling to the strong force.
The authors' abstract, as published at the source. Nature, 2026 · DOI ↗
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Field: Atomic and Molecular Physics, and Optics
Atomic and Molecular Physics, and OpticsPhysics and Astronomy