Showing posts with label exoplanets. Show all posts
Showing posts with label exoplanets. Show all posts

Thursday, February 4, 2010

Exoplanet gas spotted from Earth

Astronomers have used a new ground-based technique to study the atmosphere of a planet outside our Solar System.
The work could assist the search for Earth-like planets with traces of organic, or carbon-rich, molecules.
Gases have previously been discerned on exoplanets before, but only by using space-based telescopes.
Astronomers reporting in Nature say their method of spotting methane gas on exoplanets could be extended to many other, ground-based telescopes.
Methane was first spotted on an exoplanet named HD 189733b in 2008 by a group led by Mark Swain of Nasa's Jet Propulsion Laboratory in the US.
It is a "hot Jupiter" or gas giant that orbits very close to its parent star, which lies about 63 light-years away from Earth.
It marked the first time that an organic molecule had been detected on an exoplanet. The known planets residing outside our Solar System currently number more than 400.
Dr Swain and his colleagues have now shown that by looking at a different set of light wavelengths, methane and possibly other components can be catalogued using relatively small, Earth-bound telescopes.
They used Nasa's Infrared Telescope Facility in Hawaii to perform measurements of the light emitted by HD 189733b, using a version of the so-called transit method that measures an exoplanet's "secondary eclipse".
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What is a light year? Dr Tim O'Brien from Jodrell Bank explains
At its heart, the approach takes the light received on Earth when HD 189733b is behind its parent star and subtracts it from the light received when it is between its star and the Earth.
What results is the light due solely to the planet. However, the effects of the Earth's atmosphere, with its own atmospheric gases and passing clouds, would typically tend to overwhelm the signal from the distant star.
To overcome this obstacle, Dr Swain and his colleagues decided to look in the infrared part of the light spectrum - in a region that is not currently covered by space-based telescopes - and devised a method to get rid of the effects of Earth's atmosphere.
Their approach made simple assumptions about how errors in the light detected in the telescope are related to each other in terms of the wavelength or colour that is detected, or in terms of the time at which the detection is made. By making these correlations and correcting the signal over and over again, the overall error is whittled down.
With Earth's swirling atmosphere effectively subtracted, the team discovered a peak in their data that corresponded to methane emitting light in a process known as fluorescence.
"Up until this point we've not been able to use ground-based telescopes to detect molecules in an exoplanet's atmosphere," Dr Swain told BBC News.
"These molecules are probes of the conditions and chemistry, and since these planets are too far away for us to send a probe, they are eventually how we're going to answer the question of whether expolanets have a habitable atmosphere to support life."
However, the methane appears to contradict an assumption made about both stars and exoplanet atmospheres before - the existence of a so-called local thermodynamic equilibrium, or LTE. Something is putting more energy into the methane than it can quickly get rid of.
"We don't know what that process is in this case," Dr Swain said. "In our own Solar System, charged particles can cause this fluorescence; the other possibility is some sort of [light in the form of] photons."
Emission of light stimulated by charged particles bumping into atmospheric gases is exactly the mechanism behind the aurora displays seen at visible wavelengths at the Earth's poles.
"If we could show it was charged-particle pumping, you could put constraints on the planet's magnetic field - no-one's been able to do that for an exoplanet before."
Wider view
In any case, the methane emission is comparatively strong from HD 189733b, leading to two important conclusions. Firstly, other exoplanets may well be experiencing this same process, and detecting any methane or possibly other atmospheric gases would be made easier.
Artist's impression of HD 189733b (SPL)
HD 189733b orbits very close to its parent star
"It's a pretty interesting discovery," said Keith Horne, an astrophysicist and exoplanet expert from the University of St Andrews.
"The main impact is this strong emission line that stands out quite dramatically," he told BBC News.
"You'd be able to detect it on other objects that are farther away [from their parent stars] or are fainter. So far, it's been just the nearest, transiting 'hot Jupiters' that are bright enough to detect this secondary eclipse."
But more than that, the new research shows that some observations that were once only possible from space can now be done using ground-based telescopes.
That vastly increases the number of instruments - far larger than the 3m telescope used in the Nature work - that could be trained on exoplanet atmospheres.
"Larger telescopes could look at this in more detail, because there's so many of them. It potentially allows many different teams to participate; previous detections with the Hubble and Spitzer telescopes are great, but there's only one Hubble and only one Spitzer."
Both Dr Swain and Professor Horne agree that more detailed work is required to be certain that the peak is due to methane, and to establish how the methane violates the LTE assumption.
However, with the new results in hand, further observations in the new spectral region will be easy to justify, at least until the James Webb Space Telescope - the first space-based telescope that can "see" in this part of the infrared - takes to the skies in 2014.
"It's a hard measurement to do, and they seem to have succeeded," Professor Horne said. "The committees that decide how big telescope time is spent will be able to see it's a worthwhile measurement."

Tuesday, January 5, 2010

Nasa's Kepler planet-hunter detects five worlds

Nasa's Kepler Space Telescope has detected its first five exoplanets, or planets beyond our Solar System.
The observatory, which was launched last year to find other Earths, made the discoveries in its first few weeks of science operations.
Although the new worlds are all bigger than our Neptune, the US space agency says the haul shows the telescope is working well and is very sensitive.
The exoplanets have been given the names Kepler 4b, 5b, 6b, 7b and 8b.
They were announced at an American Astronomical Society meeting in Washington DC.

The planets range in size from an object that has a radius four times that of Earth, to worlds much bigger than even our Jupiter.
And they all circle very close to their parent stars, following orbits that range from about 3.2 to 4.9 days.
This proximity and the fact that the host stars are themselves much hotter than our Sun means Kepler's new exoplanets experience an intense roasting.
Intriguing density
Estimated temperatures go from about 1,200C to 1,650C (2,200F to 3,000F).
"The planets we found are all hotter than molten lava; they all simply glow with their temperatures," said Bill Borucki, Kepler's lead scientist from Nasa's Ames Research Center in Moffett Field, California.

THE KEPLER SPACE TELESCOPE
Infographic (BBC)
Will study more than 100,000 suns
Continuously for 4 to 6+ years
Tuned to see Earth-size planets
Will target the habitable zone
Will also see Mars to Jupiter sizes
"In fact the upper two are hotter than molten iron and looking at them might be like looking at a blast furnace. They are very bright in their own right and certainly no place to look for life."
Kepler 7b will intrigue many scientists. It is one of the lowest-density exoplanets (about 0.17 grams per cubic centimetre) yet discovered.
"The average density of this planet with its core is about the same as Styrofoam," explained Dr Borucki. "So it's an amazingly light planet, something I'm sure theoreticians will be delighted to look at in terms of trying to understand [its] structure."
Kepler blasted into space atop a Delta II rocket from Cape Canaveral Air Force Station on 6 March, 2009.
It is equipped with the largest camera ever launched into space. The telescope's mission is to continuously and simultaneously observe more than 100,000 stars.
It senses the presence of planets by looking for a tiny "shadowing" effect when one of them passes in front of its parent star.
'Water worlds'
Kepler's detectors, built by UK firm e2v, have extraordinary sensitivity.
Nasa says that if the observatory were to look down at a small town on Earth at night from space, it would be able to detect the dimming of a porch light as somebody passed in front of it.
Artist's impression of a Jupiter-size exoplanet - NASA/JPL-Caltech/T. Pyle (SSC)
Artist's impression: Four of the five are bigger than a Jupiter
The space agency hopes this sensitivity will lead it to planets that are not only Earth-size but which orbit their stars at distances more favourable to life, where liquid water might potentially reside on their surfaces.
The mission's scientists told the AAS meeting that Kepler had measured hundreds of possible planet signatures but that these needed further investigation to establish their true nature.
To confirm the existence of the most ideal Earth-like planets would take a few years, they warned.
In the meantime, all detections will help scientists improve their statistics on the distributions of planet size and orbital period.
The follow-up observations needed to confirm the new exoplanets' existence used a suite of ground-based facilities including the Keck I telescope in Hawaii.