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A hiccup in the early Universe gave rise to a gravitational hum ⚡ экспресс

Original: "Very-High-Frequency Gravitational Waves from Multi-Monodromy Inflation"
A brief pause in the expansion of the newborn Universe might have created a burst of gravitational waves detectable by Earth-based detectors.
Abstract

In the first moments, the universe inflated at a mind-boggling speed. If this process hit a pause button just for an instant, it sent ripples through spacetime — gravitational waves. Scientists have shown that these ripples can be especially strong and detectable by new, ultra-sensitive instruments on Earth. Imagine: we could reach out and touch the dawn of time!

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Right after its birth, the Universe wasn't just expanding—it was inflating at an unimaginable pace. This stage, called inflation, was proposed by Alan Guth. New models compare the process to inflating a balloon with quick, jerky pumps. If the pump hesitates for a moment between strokes, the balloon shrinks slightly and then pops with a crisp snap. So it is with the Universe: a fleeting pause leaves a surge of gravitational waves—ripples in space itself.

Over the eons, these waves have stretched along with the cosmos, and now they ripple at frequencies within reach of future detectors. Instruments like the Einstein Telescope will capture not individual “bangs,” but a constant background hum.

This hum lies right in the audible range. If we could hear space, we would perceive it as a low rumble coming from everywhere.

Detecting this signal would be the first direct evidence of how the Big Bang was triggered and the large-scale structure of the universe began to form.

The pause itself lasted less than one trillionth of a trillionth of a second—next to it, the entire sweep of human history would seem to stretch for billions of years.

It’s astonishing: oscillations born in that elusive instant might soon be registered right here on Earth.

🎯 The delay that gave rise to these waves was billions of billions of times shorter than the time it takes light to cross an atom.

Scientists
Alan GuthAndrei LindeGeorges LemaîtreJames PeeblesAdam RiessBrian Schmidt
Tags
gravitational waves expansion of the universe big bang
Laws
Friedmann equationsHubble's lawEinstein field equationsPlanck's lawquadrupole radiation formulastandard quantum limit
Original: arXiv:2601.09834v1 · CC BY · bridge42worlds