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A Mousetrap in the Atomic Nucleus: Reading Thorium with Ejected Electrons ⚡ экспресс

Original: "$$^{229}$$Th Nuclear Spectroscopy in an Opaque Material: Laser-Based Conversion Electron Mössbauer Spectroscopy of $$^{229}$$ThO$$_2$$"
Instead of light, physicists catch kicked-out electrons to see inside thorium's clock-like nucleus.
Abstract

Physicists have used a laser for the first time to make thorium-229 nuclei emit electrons — like a key that triggers a click by touch rather than by turning. This method works even with materials opaque to nuclear light and could lead to the creation of superstable nuclear clocks, transforming how we measure time.

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Inside thorium-229’s nucleus lies a hair-trigger mousetrap. When struck by a laser, it normally snaps shut, releasing a twinkle of ultraviolet light. But in many crystals, that light is smothered—like a bell wrapped in cloth—making the trap seem silent. Now, physicists bypass the light entirely: they detect the snap itself by catching the electron that gets kicked out when the trap springs. This method, internal conversion spectroscopy, reads the nuclear state even through materials that would block the light.

The payoff is speed. By crafting the crystal from a specific isotope of thorium, the trap snaps in just 10 microseconds—a hundred million times faster than waiting for the light. A nuclear clock based on this electron readout could become 10,000 times more stable, potentially losing less than a second over the age of the universe. Such a clock would test whether the speed of light is truly constant and probe the Standard Model of physics for cracks.

The nucleus is a mousetrap: instead of a flash, it kicks out an electron. Catch that electron, and you know the trap sprang.

🎯 The energy needed to spring the mousetrap is a mere 8.4 electron volts, easily delivered by a laser—most nuclear transitions demand monstrous particle accelerators.

Scientists
Christian DopplerD. B. McLaughlinDidier QuelozMichel MayorR. A. RossiterAlbert Einstein
Tags
spectroscopy Standard Model speed of light
Laws
Doppler effectprinciple of constancy of the speed of lightNoether's theoremmass–energy equivalenceMaxwell's equationsPlanck's law
Original: arXiv:2506.03018v1 · CC BY 4.0 · bridge42worlds