Article 6HRDY Hubble Finds Weird Home of Farthest Fast Radio Burst

Hubble Finds Weird Home of Farthest Fast Radio Burst

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msmash
from Slashdot on (#6HRDY)
Astronomers using NASA's Hubble Space Telescope have found a rare event in an oddball place. NASA reports: It's called a fast radio burst (FRB), a fleeting blast of energy that can -- for a few milliseconds -- outshine an entire galaxy. Hundreds of FRBs have been detected over the past few years. They pop off all over the sky like camera flashes at a stadium event, but the sources behind these intense bursts of radiation remain uncertain. This new FRB is particularly weird because it erupted halfway across the universe, making it the farthest and most powerful example detected to date. And if that's not strange enough, it just got weirder based on the follow-up Hubble observations made after its discovery. The FRB flashed in what seems like an unlikely place: a collection of galaxies that existed when the universe was only 5 billion years old. The large majority of previous FRBs have been found in isolated galaxies. FRB 20220610A was first detected on June 10, 2022, by the Australian Square Kilometer Array Pathfinder (ASKAP) radio telescope in Western Australia. The European Southern Observatory's Very Large Telescope in Chile confirmed that the FRB came from a distant place. The FRB was four times more energetic than closer FRBs. "It required Hubble's keen sharpness and sensitivity to pinpoint exactly where the FRB came from," said lead author Alexa Gordon of Northwestern University in Evanston, Illinois. "Without Hubble's imaging, it would still remain a mystery as to whether this was originating from one monolithic galaxy or from some type of interacting system. It's these types of environments -- these weird ones -- that are driving us toward better understanding the mystery of FRBs." Hubble's crisp images suggest this FRB originated in an environment where there may be as many as seven galaxies on a possible path to merging, which would also be very significant, researchers say.

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