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A Tabletop Light Maze Captures Gravity ⚡ экспресс

Original: "50-km fiber interferometer for testing gravitational signatures in quantum interference"
arXiv:2511.17022 · 2025-11-21 · CC BY 4.0 · ⏱ 1 min · Quantum Physics General Relativity
A 50-kilometer fiber-optic labyrinth on a table has enabled the first direct measurement of how gravity shifts the wave of a single photon.
Abstract

A 50-kilometer fiber-optic interferometer built on a table catches tiny photon shifts caused by gravity—like spotting a hair bending across a football field. It's a chance to test quantum effects in curved spacetime. Could unexpected phenomena pop up?

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The theory of gravity by Einsteingeneral relativity — rarely intersects with quantum physics in direct experiments. Here, scientists built a 50-kilometer glass labyrinth on a table and sent single photons through it. Gravity slightly bends the space inside this maze, and on the way out the light's wave rhythm changes—a tiny delay appears, as if one corridor had imperceptibly lengthened.

50 km of fiber—longer than a marathon, coiled into a spool the size of a dinner plate.

To avoid confusing gravity with Earth's tremors, the table was suspended on shock absorbers—even a distant train would have ruined the experiment. The device compared two halves of the photon wave and caught a split of millionths of a radian. Thus, for the first time in a lab, they captured gravitational redshift for individual light quanta. This breakthrough will allow testing how quantum particles feel curved space. One day, such tabletop detectors might even hear gravitational waves at the microscale.

🎯 Gravity affects light so weakly that rising just one meter changes its frequency by only 10^-16. In this experiment, they caught a phase shift of 0.06 milliradians—like noticing a wheel turn by the width of a hair.

🎬 In Interstellar, characters sent signals through gravity. Real tabletop light labyrinths already show how quantum particles get tangled in curved space.

Scientists
Christian DopplerD. B. McLaughlinDidier QuelozMichel MayorR. A. RossiterAlbert Einstein
Tags
spacetime curvature speed of light gravitational waves
Laws
Doppler effectprinciple of constancy of the speed of lightmass–energy equivalenceEinstein field equationsMaxwell's equationsLorentz transformations
Original: arXiv:2511.17022 · CC BY 4.0 · bridge42worlds