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Some signs of quantum gravity may be an illusion

Some signs of quantum gravity may be an illusion

sciencedaily.com 30.08.2026 04:58 2 views
Quantum mechanics and Einstein’s theory of gravity explain almost everything we see in nature, yet physicists still do not know how to unite them. A new theoretical framework suggests that some experiments that appear to

Two remarkably successful theories explain nearly everything we observe in the universe, from tiny atoms and molecules to planets, stars, and galaxies. Quantum mechanics describes the behavior of matter at very small scales, while Einstein's theory of gravity explains how stars and black holes move and how the Universe expands. Despite their enormous success, the two theories still do not fit neatly together.

Physicists have spent decades searching for a theory of "quantum gravity" that could combine them into one consistent description of nature. A central expectation is that gravity itself should ultimately follow the rules of quantum mechanics. That possibility quickly becomes difficult to visualize.

Quantum mechanics allows an object to be delocalized across multiple locations at the same time, an effect that has been repeatedly demonstrated with atoms and even small pieces of metal. Einstein's theory, meanwhile, treats gravity as a property of space and time itself -- it can bend, flatten, and support waves that travel through it, as gravitational wave detectors have confirmed. Because of this, many physicists have assumed that the spacetime surrounding a quantum object could also occupy several "states" simultaneously.

But what would that actually look like in an experiment? Researchers from Kyushu University, the University of Waterloo, and Stockholm University may now have part of the answer. Their findings were published in npj Quantum Information.

The researchers developed a theoretical framework showing that many situations described as a "quantum superposition of gravity" can also be interpreted in a very different way. In these cases, the quantum particles can remain in superpositions while moving through ordinary gravity and spacetime. Under that description, no genuinely quantum behavior of gravity is required.

"Many researchers have proposed experiments that could potentially reveal the quantum nature of gravity," explains Associate Professor Joshua Foo of Kyushu University's Institute for Advanced Study and lead author of the study. "What we found is that some of these scenarios can be viewed from two equally valid perspectives. One interpretation describes gravity as being in a quantum superposition, while the other describes quantum particles moving in an ordinary gravitational field." The team calls this idea the "Relativity of Spacetime Superpositions." One way to picture it is to think of two maps showing the same landscape using different projections.

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