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All Atoms Fall Alike: A Cosmic Verdict ⚡ экспресс

Original: "In-orbit Test of the Weak Equivalence Principle with Atom Interferometry"
A space test with atoms confirmed: gravity pulls everything equally, to within one ten-millionth.
Abstract

The weak equivalence principle (WEP), a central tenet of general relativity, has been tested in space for the first time using a quantum interferometer aboard the Chinese Space Station. The experiment employed two rubidium isotopes (⁸⁵Rb and ⁸⁷Rb) and used techniques like platform motion suppression, rapid-cycling fluorescence detection, and two-photon detuning, which minimized phase noise. Over 280 days of data taking, a statistical uncertainty of 2.8×10⁻⁸ was achieved, and after evaluating systematic errors, the final result is (−3.1±4.6)×10⁻⁷. This result improves upon previous atom-interferometric WEP tests in microgravity by three orders of magnitude. The progress paves the way for orbital quantum inertial sensors for future fundamental physics research in space.

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Galileo, legend has it, dropped balls from the Tower of Pisa to prove that heavy and light objects fall equally. This law formed the foundation of Einstein's theory of gravity. Today, scientists have turned an entire space station into such a tower. Only instead of stone balls, they use two clouds of rubidium atoms: one type of atom slightly lighter, the other slightly heavier.

In zero gravity, the atoms aren't just dropped—they're tossed upward, and they drift slowly, like fluffs, before falling. Laser beams, like a perfect ruler, measure their motion to within thousandths of a hair's breadth. The goal is to catch the slightest difference in how gravity pulls each type.

No difference was found. Both clouds feel the curvature of spacetime exactly the same. The error is no more than three ten-millionths. This space experiment is a thousand times more precise than Earth-based measurements with atoms. In the future, it will enable building orbital instruments for catching gravitational waves and searching for dark matter.

🎯 Galileo probably never actually dropped balls from the tower. But modern physicists had to toss atoms in space: on Earth, free fall would last less than a second, but in zero gravity it's a few precious moments.

🎬 In the movie 'Interstellar,' gravity allows communication across dimensions. Experiments like this are a real step toward understanding how the fabric of the universe curves.

Scientists
Albert EinsteinFritz ZwickyVera RubinBernhard RiemannJoseph WeberKarl Schwarzschild
Tags
spacetime curvature gravitational waves dark matter
Laws
gravitational lensingEinstein field equationsequivalence principlevirial theoremLense–Thirring effectUnruh effect
Original: arXiv:2603.22981 · CC BY · bridge42worlds