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How Black Holes Erase Quantum Secrets ⚡ экспресс

Original: "On the nature of entangling photons in horizon-induced decoherence"
· Max Joseph Fahn, Alessandro Pesci
arXiv:2605.19588 · 2026-05-19 · CC BY · ⏱ 1 min · General Relativity Quantum Physics
Photons falling into a black hole can destroy a quantum particle's ability to be in two places at once.
Abstract

Imagine tossing a coin, but while it's in the air, an invisible boundary (like a black hole’s horizon) swallows some of the information about its spin. The coin lands heads or tails without quantum uncertainty. Scientists have figured out that this is exactly how horizons kill quantum superpositions, hiding information inside. Could this explain why our world looks classical rather than quantum-fuzzy?

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A quantum particle can be in two states at once—like a coin spinning, both heads and tails. Near a black hole, the event horizon—where spacetime curvature bends space and time to the extreme—acts as a one-way gate. A stray photon grazing this boundary 'photographs' the coin, forcing it to land on one side. The photon then crosses the horizon, carrying the snapshot into oblivion. Black holes store information on their surface, not inside—like a hologram. The photon's record gets added to the horizon's area, tweaking only the electromagnetic field without adding mass or energy. This obeys strict entropy laws discovered by Jacob Bekenstein and Stephen Hawking. The twist: a black hole's memory lives on a two-dimensional surface, a cosmic canvas where quantum possibilities vanish without a trace.

🎯 A black hole's information capacity is measured by its surface area, not its volume—a counterintuitive result that emerged from Bekenstein and Hawking's work.

Scientists
Stephen HawkingJacob BekensteinAlbert EinsteinFritz ZwickyVera RubinBernhard Riemann
Tags
black hole entropy spacetime curvature
Laws
second law of thermodynamicsHawking radiationgravitational lensingBekenstein-Hawking entropyEinstein field equationsBoltzmann distribution
Original: arXiv:2605.19588 · CC BY · bridge42worlds