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vantagefeed.com > Blog > Science > Stephen Hawking was wrong – extreme black holes are possible
Stephen Hawking was wrong – extreme black holes are possible
Science

Stephen Hawking was wrong – extreme black holes are possible

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Last updated: September 16, 2024 2:26 am
Vantage Feed Published September 16, 2024
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Two mathematicians proved Hawking and his colleagues wrong. A pair Recent Publications by Christoph Kähle Massachusetts Institute of Technology and Ryan Unger A joint study from Stanford University and the University of California, Berkeley has demonstrated that there are no known laws of physics that prevent extremal black holes from forming.

Their mathematical proof is “beautiful, technically groundbreaking and physically astounding.” Mihalis DafermosThe Princeton mathematician, who was Kahle and Unger’s doctoral supervisor, added that the discovery suggests a potentially richer and more diverse universe, and that “extreme astrophysical black holes may exist.”

“Just because there’s a mathematical solution that has nice properties doesn’t necessarily mean that nature will take advantage of it,” Khanna says. “But if we can somehow find it, that’s really exciting.” [make] “We need to think about what we’re missing,” he said, noting that such a discovery could raise “some pretty radical questions.”

The law of impossibility

Prior to Kähle and Unger’s proof, there was good reason to believe that extremal black holes could not exist.

In 1973, Bardeen, Carter and Hawking published four laws for the behavior of black holes, which are similar to the long-established four laws of thermodynamics, a sacred set of principles that state, for example, that the universe becomes disordered over time and that energy can neither be created nor destroyed.

Massachusetts Institute of Technology mathematician Christoph Kähle recently disproved a 1973 conjecture about extremal black holes.

Image: Dan Komoda/Institute for Advanced Study

In their paper, the physicists proved the first three laws of black hole thermodynamics: the zeroth law, the first law, and the second law. Additionally, they hypothesized that the third law (which is similar to the standard law of thermodynamics) is also true, although they have not yet been able to prove it.

The law states that the surface gravity of a black hole cannot be reduced to zero in a finite time, i.e., there is no way to create an extremal black hole. To support their claim, the three argued that any process in which the charge or spin of a black hole reaches an extremum could also result in the black hole’s event horizon disappearing entirely. Black holes without an event horizon are called naked singularities and are widely believed to be unable to exist. Furthermore, since the temperature of a black hole is known to be proportional to its surface gravity, a black hole without surface gravity would also have no temperature. Such black holes would not emit thermal radiation. Hawking later proposed that black holes must emit thermal radiation.

In 1986, physicist Werner Israel seemed to have put an end to the problem. The proof was published The third law: Suppose we wanted to create an extremal black hole from an ordinary black hole. To do so, we could make the black hole spin faster or add charged particles. Israel’s proof seems to show that doing so would not reduce the surface gravity of the black hole to zero in a finite amount of time.

As Kahle and Unger ultimately discovered, Israel’s arguments were hidden by flaws.

The End of the Third Law

Kähle and Unger did not set out to find an extremal black hole, but discovered it purely by chance.

They were studying the formation of electrically charged black holes, and “realized that you could make black holes with any charge-to-mass ratio,” Kale says, including the highest possible charge, a characteristic of extreme black holes.

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After proving that highly charged, extreme black holes are mathematically possible, Stanford University’s Ryan Unger is now trying to show that rapidly rotating black holes are also possible, but this is a much harder problem.

Photo: Dimitris Fetsios

Daffermos recognized that his former students had found a counterexample to Bardeen, Carter and Hawking’s third law: they had shown that it was possible to transform a typical black hole into an extremal black hole in a finite amount of time.

Starting with a non-rotating, uncharged black hole, Kale and Unger modeled what would happen if they placed it in a simplified environment called a scalar field, which imagines a background of uniformly charged particles. They then added charge to the black hole by hitting it with pulses from the field.

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