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Is dark matter the remnant of evaporated black holes? ⚡ экспресс

Original: "Signatures of loop quantum gravity in primordial black hole cosmologies"
arXiv:2605.28953 · 2026-05-27 · CC BY 4.0 · ⏱ 1 min · General Relativity Cosmology
Dark matter might be made of minuscule remnants of evaporated primordial black holes — a conclusion drawn by physicists studying the early universe.
Abstract

Imagine dark matter as tiny, ultra-dense ‘seeds’ from the early Universe. Scientists checked whether these leftovers from exploded primordial black holes could make up all dark matter. It turns out this scenario predicts distinctive gravitational waves that today’s detectors could catch. Maybe the invisible Universe is built from ancient ‘cinders’?

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The universe is filled with invisible dark matter. Just as a drop of water, as it evaporates, leaves behind a tiny salt crystal, so too can a black hole evaporate, leaving behind a minuscule stable remnant. This idea was developed by Stephen Hawking and Jacob Bekenstein.

New research examined whether such remnants of primordial holes, born right after the Big Bang, could have become dark matter. It turned out that if light holes were too abundant, their 'salt grains' overproduced — the cosmos would be oversaturated. But holes with a mass of around a thousand kilograms (like a small car) evaporate just in time for our era, heating the universe along the way, and their remnants perfectly match today's dark matter.

A black hole weighing a ton would shine hotter than the Sun's core and melt like a grain of salt on a scorching frying pan, leaving an invisible trace.

While these holes were evaporating, they amplified random density fluctuations, generating a powerful background of gravitational waves — ripples in spacetime. Ground-based and space detectors, which Kip Thorne helped develop, may pick up this echo. If the signal is confirmed, we’ll know that dark matter is a handful of 'salt' from ancient black holes.

🎯 Primordial black holes can weigh as much as a mountain yet be smaller than an atom.

Scientists
Alan GuthAndrei LindeGeorges LemaîtreJames PeeblesAdam RiessBrian Schmidt
Tags
dark matter black hole gravitational waves big bang
Laws
Friedmann equationsHubble's lawHawking radiationgravitational lensingBekenstein-Hawking entropyEinstein field equations
Original: arXiv:2605.28953 · CC BY 4.0 · bridge42worlds