IE 11 is not supported. For an optimal experience visit our site on another browser.

Out of This World: Scientists Spot Aurora Beyond Our Solar System

Astronomers have discovered the first auroras ever seen outside the solar system.
Image: Artist's concept of brilliant auroras on failed star about 18.5 light-years from Earth
An artist's concept of brilliant auroras on the brown dwarf LSR J1835+3259, a misfit failed star about 18.5 light-years from Earth. The auroras are the first ever detected beyond our own solar system.Chuck Carter and Gregg Hallinan / Caltech

Astronomers have discovered the first auroras ever seen outside the solar system — alien light shows more powerful than any other auroras ever witnessed, perhaps 1 million times brighter than any on Earth, researchers say.

Auroras could soon be detected from distant exoplanets as well, investigators added.

Auroras, the radiant displays of colors in the sky known on Earth as the northern or southern lights, are also seen on all of the other planets with magnetic fields in the solar system. They are caused by currents in the magnetosphere of a planet — the shell of electrically charged particles captured by a planet's magnetic field — that force electrons to rain down on the atmosphere, colliding with the molecules within and making them give off light. [Amazing Auroras on Earth in 2015 (Photos)]

To see if auroras might be seen outside the solar system, astronomers investigated a mysterious Jupiter-size object called LSR J1835+3259, located about 18.5 light-years from Earth. The object is a few dozen times more massive than Jupiter, suggesting it is too heavy to be a planet but too light to be a star, the researchers said.

They suggested that LSR J1835+3259 is a brown dwarf, a strange misfit object sometimes known as a failed star. As massive as brown dwarfs are compared to planets, they are too puny to force atoms to fuse together and release the nuclear energy that powers stars.

In 2001, scientists unexpectedly discovered that brown dwarfs could generate radio waves. "That was very surprising," said Gregg Hallinan, an astronomer at the California Institute of Technology in Pasadena and lead author of the new study. "Typically, we see radio waves from really active stars, not objects with much cooler temperatures like brown dwarfs," he told Space.com.

In 2008, Hallinan and his colleagues found that LSR J1835+3259 emitted radio waves in pulses. "We knew that radio pulses from planets in our own solar system were caused by aurorae, so we thought maybe brown dwarfs had aurorae too," he said.

Image: Artist's concept of brilliant auroras on failed star about 18.5 light-years from Earth
An artist's concept of brilliant auroras on the brown dwarf LSR J1835+3259, a misfit failed star about 18.5 light-years from Earth. The auroras are the first ever detected beyond our own solar system.Chuck Carter and Gregg Hallinan / Caltech

Using the Karl G. Jansky Very Large Array in New Mexico to scan radio wavelengths of light, along with the Hale Telescope on Palomar Mountain in California and the W. M. Keck Observatory in Hawaii to scan visible wavelengths of light, the researchers detected the telltale signs of auroras on LSR J1835+3259.

"If you were to somehow stand on the brown dwarf's surface and survive — the surface gravity is maybe 100 times more intense than Earth's, and the temperature is several hundred to several thousand degrees — you'd see a beautiful bright-red aurora," Hallinan said. "The colors of auroras depend on whatever the atmosphere they take place in is made of. In Earth's case, it's mostly green and blue and red because of oxygen and nitrogen. When it comes to Jupiter, Saturn and brown dwarfs — which have hydrogen-rich atmospheres — you'd see red, and there would be ultraviolet and infrared wavelengths as well."

Until now, the brightest known auroras came from Jupiter, which has the most powerful magnetic field in the solar system. In comparison, these newfound auroras are more than 10,000 times — and maybe 100,000 times — brighter than Jupiter's, Hallinan said. This is because LSR J1835+3259 has a magnetic field perhaps 200 times stronger than Jupiter's, he said.

The scientists detail their findings in the July 30 issue of the journal Nature.

This is a condensed version of a report from Space.com. Read the full report. Follow Space.com @Spacedotcom, Facebookor Google+.

More from Space.com