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Measuring Black Holes with Spacecraft Stopwatches ⚡ экспресс

Original: "Geometric Search for Hawking Radiation from Nearby Primordial Black Holes"
· Shuo Xiao, Shuang-Nan Zhang
arXiv:2603.16508 · 2026-03-17 · CC BY 4.0 · ⏱ 1 min · Instrumentation High Energy
A new method uses the slight curve of gamma-ray waves to measure the distance to an exploding tiny black hole.
Abstract

Gamma-ray bursts usually arrive as flat waves, but from a nearby source the front is curved, like ripples on water. Astronomers proposed using signal delays between satellites to measure the distance to a burst. So far, they've ruled out sources closer than 1.2 AU, but the method can 'see' them out to 1000 AU. Maybe it'll catch an evaporating black hole that way?

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A pebble dropped in a pond creates curved ripples, but from far away they appear as straight lines. Gamma-ray flashes from an evaporating black hole behave the same: a distant burst sends flat waves, while a nearby one arrives curved.

Just as ripples curve, a nearby black hole’s gamma rays arrive as a curved front.

Astronomers use this curvature to measure distance. By comparing the tiny time lags between satellites (because the speed of light is constant), they can pinpoint the source. This technique, using light measurement (photometry), has been checked with NASA's Swift satellite. No curved signals appeared within 1.2 AU — the Earth-Sun gap. But future deep-space probes could search farther. The prey are primordial black holes: relics from the Big Bang, smaller than an atom yet heavier than a skyscraper. If one evaporates, it would emit a Hawking radiation burst we could catch.

🎯 Primordial black holes, if they exist, are tiny but incredibly dense — remnants from the Big Bang — and they could be evaporating today, flashing gamma rays detectable by deep-space probes.

Scientists
Christian DopplerD. B. McLaughlinDidier QuelozMichel MayorR. A. RossiterStephen Hawking
Tags
black hole photometry speed of light
Laws
Doppler effectHawking radiationgravitational lensingprinciple of constancy of the speed of lightBekenstein-Hawking entropymass–energy equivalence
Original: arXiv:2603.16508 · CC BY 4.0 · bridge42worlds