Showing posts with label M dwarf stars. Show all posts
Showing posts with label M dwarf stars. Show all posts

Wednesday, July 15, 2026

First Completed Rocky Worlds Program Observations Open New Era in Exoplanet Studies

This artist’s concept shows an M dwarf star, also called a red dwarf star, and a planet. Most rocky planets in the Milky Way galaxy orbit red dwarf stars, which are smaller and cooler than the Sun, but can be much more active, bombarding nearby planets with high-energy X-rays and ultraviolet light.

The Rocky Worlds Director’s Discretionary program, a combined effort by NASA’s Webb and Hubble Space Telescopes, is underway to explore whether rocky planets can maintain atmospheres in this environment.

The team recently completed observations of the first target, Earth-sized rocky planet GJ 3929 b and its star GJ 3929. Credits Illustration: STScI, Ralf Crawford (STScI)



Scientists leading the astronomy community’s most ambitious effort to study rocky planets outside of our solar system have reached a major milestone.

The team has completed the coordinated observations of the first target, an Earth-sized rocky planet GJ 3929 b and GJ 3929, the red dwarf star it orbits, using NASA’s James Webb and Hubble Space Telescopes.

While the planet itself is scientifically compelling, researchers say the importance of this milestone extends far beyond a single target.

“This was our proving ground,” said Néstor Espinoza, Rocky Worlds Director’s Discretionary Time (DDT) program lead and mission scientist for exoplanet science at the Space Telescope Science Institute (STScI) in Baltimore. “Finishing these first observations shows that the program works technically, scientifically, and collaboratively.”

The Rocky Worlds DDT program was designed to create a foundational, community-driven dataset for studying rocky exoplanets with Webb and Hubble . While Webb measures mid-infrared light coming from each planet to determine whether it has an atmosphere, Hubble is analyzing ultraviolet light from each host star to assess the planet’s radiation environment.

STScI leads the effort to design the observing strategy, manage the program’s technical implementation, and build the collaborative framework connecting scientists across the broader exoplanet community.

“This team’s efforts reflect the best of the institute’s unique ability to bring together expertise in science operations, engineering, scheduling, software development, and large-scale program management to execute some of astronomy’s most technically challenging observations and answer some of the universe’s biggest questions,” said STScI Director Jennifer Lotz.

The GJ 3929 system became the program’s first completed target after emerging early as one of the strongest candidates for initial observations. Scientists selected the star and its planet through a multi-stage community process involving Science Advisory Council discussions, mini-surveys, and feedback from researchers across the exoplanet community.

The team emphasizes that the target was not chosen because it was expected to produce the most dramatic discovery. Instead, it represents an important balance: scientifically valuable, observationally feasible, and ideal for helping the team learn how to execute a complex program involving complementary observations, some of which are captured simultaneously, from multiple flagship observatories.

The observations required researchers to precisely predict when the planet would pass behind its star, an event known as a secondary eclipse. Even for a comparatively favorable target like GJ 3929 b, uncertainties in the planet’s orbit created significant technical challenges.

Completing the observations demonstrated that the team could overcome those challenges and establish a framework for future targets, many of which are expected to be even more difficult.

“This is exactly why the Rocky Worlds program exists,” added Hannah Diamond-Lowe, deputy lead of the program and assistant astronomer at STScI. “These are high-risk, high-reward observations. Completing this first target shows we know how to do it.”

The milestone also highlights the remarkably collaborative nature of the program. Scientists from around the world shared unpublished supporting observations, including radial velocity measurements used to refine the planet’s orbit and improve scheduling predictions, to help develop and refine the observation plans.

At the same time, the Rocky Worlds team is building new systems intended to encourage open collaboration while reducing duplicated effort across the field and grow the scope, impact and scientific return of the program, including the recently launched Rocky Worlds DDT Data Challenge. The new Community Involvement Initiative also provides an open forum for researchers and research to facilitate share information on analysis techniques, complementary and follow-up observations, project ideas, and plans for publications.

The program’s leaders say this collaborative structure was part of the vision from the beginning.

“We wanted to create something that belonged to the community,” Espinoza said. “The goal is not only to produce groundbreaking science, but also to build a framework where many researchers can contribute, collaborate, and learn together.”

The data, which are immediately available as soon as they’re downloaded from the telescope, have swiftly sparked scientific interest in the community. Some researchers have already started analyzing the data and publishing their conclusions.

For the Rocky Worlds team, that response reinforces the significance of the milestone.

The Space Telescope Science Institute is expanding the frontiers of space astronomy by hosting the science operations center of the Hubble Space Telescope, the science and mission operations centers for the James Webb Space Telescope, and the science operations center for the Nancy Grace Roman Space Telescope. STScI also houses the Barbara A. Mikulski Archive for Space Telescopes (MAST) which is a NASA-funded project to support and provide to the astronomical community a variety of astronomical data archives, and is the data repository for the Hubble, Webb, Roman, Kepler, K2, TESS missions and more. STScI is operated by the Association of Universities for Research in Astronomy in Washington, D.C.




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Hannah Braun
Space Telescope Science Institute, Baltimore

Christine Pulliam
Space Telescope Science Institute, Baltimore

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Tuesday, October 21, 2025

Discovery of a Brown Dwarf Orbiting a Red Dwarf through the Synergy of Ground- and Space-Based Observatories

Figure 1: Infrared image of the brown dwarf companion J1446B (marked by the arrow). The host star (J1446) is masked in white during image processing. The white bar at the lower right corresponds to an angular distance equivalent to 10 astronomical units (roughly the distance between Saturn and the Sun). (Credit: Taichi Uyama (Astrobiology Center/CSUN) / W. M. Keck Observatory)


By combining the power of ground-based and space-based telescopes, astronomers have discovered a new brown dwarf—a type of object that lies between a star and a planet—orbiting a small star about 55 light-years from Earth. In addition, infrared observations revealed variations in its brightness, suggesting that clouds and storms may be forming and moving within the brown dwarf’s atmosphere.

In our Milky Way Galaxy, the most common type of stars is small, cool stars known as M dwarfs, or red dwarfs. They make up more than half of the all stars in our Galaxy. Because M dwarfs are intrinsically faint, it has been difficult to determine how many of them have planets or brown dwarfs as companions. Brown dwarfs are too light to shine like normal stars, yet heavier than planets—objects, so they bridge the gap between the two. Understanding how frequently such companions exist, and what masses they have, is essential for learning how stars and planets form and evolve.

An international research team led by the Astrobiology Center, California State University Northridge, and Johns Hopkins University has now discovered a brown dwarf companion orbiting a nearby M dwarf LSPM J1446+4633 (hereafter J1446), located about 55 light-years from Earth (Figure 1). The companion, J1446B, has a mass of about 60 times that of Jupiter and orbits its host star at a distance 4.3 times the Earth–Sun separation, completing one orbit in about 20 years. In addition, near-infrared observations revealed brightness variations of about 30%, indicating possible cloud activity or atmospheric circulation on the brown dwarf.

"Studying the weather on these distant objects not only helps us to understand how their atmosphere form, but also informs our larger search for life planets beyond the solar system" says Taichi Uyama, researcher with the Astrobiology Center of Japan and lead author of the study.

The key to this discovery was the combination of three complementary observation techniques: (1) precise radial velocity measurements using InfraRed Doppler (IRD) on the Subaru Telescope, (2) direct imaging with the W. M. Keck Observatory, and (3) astrometric measurements of the host star’s motion with the Gaia spacecraft.

By analyzing all three datasets together, the team accurately determined the mass and orbit of the companion (Figure 2). In particular, the Subaru Telescope’s six years of data from its strategic program (IRD-SSP) were crucial. Radial velocity data alone cannot break the degeneracy between mass and orbital inclination, but adding direct imaging and Gaia astrometry resolves this ambiguity.

Figure 2: Orbit modeling of J1446B. (Left) The projected orbit inferred from W. M. Keck Observatory’s direct imaging (blue dot at upper right) and the acceleration in the host star’s motion measured by Gaia (red arrow). Axes show right ascension and declination in arcseconds. The black curve represents the most probable orbit, while the colored curves indicate other possible orbits; color corresponds to the estimated mass of J1446B (color scale shown on right). (Right) Radial velocity variations of the host star measured by IRD (red points), along with simulated orbital solutions color-coded by companion mass. The lower panel shows residuals from the fit. (Credit: Qier An (UCSB) / Uyama et al. (2025))


Previous studies have demonstrated the power of combining Hipparcos and Gaia astrometry (Note 1) with direct imaging to detect and characterize companions (Note 2). However, Hipparcos was unable to measure the positions of faint red dwarfs like J1446. This study is the first to apply Gaia-only data to such a system, successfully constraining the orbit and dynamical mass of a brown dwarf companion.

This discovery provides a critical benchmark for testing brown dwarf formation scenarios and atmospheric models. Future observations may even allow researchers to map the weather patterns of this intriguing object. This result highlights the power of combining ground-based and space-based telescopes to uncover hidden worlds beyond our Solar System.

These results appeared as Uyama et al. "Direct Imaging Explorations for Companions from the Subaru/IRD Strategic Program II; Discovery of a Brown-dwarf Companion around a nearby Mid-M-dwarf LSPM J1446+4633" in the Astronomical Journal on October 20, 2025.

This research was supported by JSPS KAKENHI (Grant Numbers: 24K07108, 24K07086). The development and operation of IRD were supported by JSPS KAKENHI (Grant Numbers: 18H05442, 15H02063, and 22000005).

These results appeared as Uyama et al. "Direct Imaging Explorations for Companions from the Subaru/IRD Strategic Program II; Discovery of a Brown-dwarf Companion around a nearby Mid-M-dwarf LSPM J1446+4633" in the Astronomical Journal on October 20, 2025.

This research was supported by JSPS KAKENHI (Grant Numbers: 24K07108, 24K07086). The development and operation of IRD were supported by JSPS KAKENHI (Grant Numbers: 18H05442, 15H02063, and 22000005).




(Note 1) The Gaia spacecraft, launched in 2013, is an astrometric mission designed to create a detailed 3D map of stars in the Milky Way. Its extremely precise positional measurements enable the detection of companions and planets through the astrometric method, which relies on subtle stellar motions. Hipparcos, launched in 1989, was Gaia’s predecessor and provided the first space-based astrometric catalog.

(Note 2) For details on the research methods, please refer to the Science Results on January 2023.



Relevant Links
  • W. M. Keck Observatory October 20, 2025 Press Release Astrobiology Center October 21, 2025 Press Release


About the Subaru Telescope

The Subaru Telescope is a large optical-infrared telescope operated by the National Astronomical Observatory of Japan, National Institutes of Natural Sciences with the support of the MEXT Project to Promote Large Scientific Frontiers. We are honored and grateful for the opportunity of observing the Universe from Maunakea, which has cultural, historical, and natural significance in Hawai`i.


Friday, March 21, 2025

ALMA Unveils New Details of the Flares of Proxima Centauri Press Releases ALMA Unveils New Details of the Flares of Proxima Centauri

Artist's concept of a stellar flare from Proxima Centauri
Credit: NSF/AUI/NSF NRAO/S. Dagnello



At just over four light years, Proxima Centauri is our nearest stellar neighbor known to be a very active M dwarf star. Its flare activity has been well known to astronomers using visible wavelengths of light. Still, a new study using observations with the Atacama Large Millimeter/submillimeter Array (ALMA) highlights this star's extreme activity in radio and millimeter wavelengths, offering exciting insights about the nature of these flares as well as potential impacts on the livability of its terrestrial, habitable-zone planets.

Known to host a potentially habitable planet, the star exhibits very active flare activity in optical wavelengths. Like flares on our Sun, these outbursts release light energy across the electromagnetic spectrum and bursts of particles known as stellar energetic particles. Depending on the energy and frequency of these flares, nearby planets in the habitable zone might be rendered uninhabitable as the flares strip planetary atmospheres of necessary ingredients such as ozone and water.

A scientific team led by Kiana Burton of the University of Colorado and Meredith MacGregor of Johns Hopkins University utilized archival data and new ALMA observations to study the millimeter-wavelength flare activity of Proxima Centauri. Proxima Centauri's small size and strong magnetic field indicate that its entire internal structure is convective (unlike the Sun, which has both convective and non-convective layers), making the star much more active. Its magnetic fields become twisted, develop tension, and eventually snap, sending streams of energy and particles outward in what is observed as flares.

"Our Sun's activity doesn't remove Earth's atmosphere and instead causes beautiful auroras because we have a thick atmosphere and a strong magnetic field to protect our planet. But Proxima Centauri's flares are much more powerful, and we know it has rocky planets in the habitable zone. What are these flares doing to their atmospheres? Is there such a large flux of radiation and particles that the atmosphere is getting chemically modified, or perhaps completely eroded?" said MacGregor.

ALMA (Atacama Large Millimeter/submillimeter Array) This research represents the first multi-wavelength study using millimeter observations to uncover a new look at the physics of flares. Combining 50 hours of ALMA observations using both the full 12-meter array as well as the 7-meter Atacama Compact Array (ACA), a total of 463 flare events were reported at energies ranging from 1024 to 1027 erg, and with a brief duration ranging from 3 to 16 seconds.

"When we see the flares with ALMA, we see the electromagnetic radiation–the light in various wavelengths. But looking deeper, this radio wavelength flaring is also giving us a way to trace the properties of those particles and get a handle on what is being released from the star," says MacGregor. To do so, the team characterized the star's (so-called flare frequency distribution) to map out the number of flares as a function of their energy. Typically, the slope of this distribution tends to follow a power law function: smaller (less energetic) flares occur more frequently, while larger, more energetic flares occur less regularly. Proxima Centauri experiences so many flares that the team detected many flares within each energy range. Furthermore, the team was able to quantify the asymmetry of the star's highest energy flares, describing how the flares' decay phase was much longer than the initial burst phase.

Radio and millimeter-wavelength observations help constrain the energies associated with these flares and their associated particles. MacGregor highlighted ALMA's key role: "The millimeter flaring seems much more frequent. It's a different power law than we see at the optical wavelengths. If we only look at optical wavelengths, we're missing critical information. ALMA is the only millimeter interferometer sensitive enough for these measurements."




Additional information

results of the study are published in the following scientific paper: MacGregor et al. "The Proxima Centauri Campaign. First constraints on millimeter flare rates from ALMA".

The original press release was published by the National Radioastronomy Observatory of United States (NRAO), an ALMA partner in behalf of North America.

The Atacama Large Millimeter/submillimeter Array (ALMA), an international astronomy facility, is a partnership of the European Southern Observatory (ESO), the U.S. National Science Foundation (NSF), and the National Institutes of Natural Sciences (NINS) of Japan in cooperation with the Republic of Chile. ALMA is funded by ESO on behalf of its Member States, by NSF in cooperation with the National Research Council of Canada (NRC) and the National Science and Technology Council (NSTC) in Taiwan, and by NINS in cooperation with the Academia Sinica (AS) in Taiwan and the Korea Astronomy and Space Science Institute (KASI).

ALMA construction and operations are led by ESO on behalf of its Member States; by the National Radio Astronomy Observatory (NRAO), managed by Associated Universities, Inc. (AUI), on behalf of North America; and by the National Astronomical Observatory of Japan (NAOJ) on behalf of East Asia. The Joint ALMA Observatory (JAO) provides the unified leadership and management of ALMA's construction, commissioning, and operation.


Monday, October 21, 2024

Gliese 229 B’s Newfound Companion Solves Brown Dwarf Mystery

S. Kulkarni (Caltech), D.Golimowski (JHU) and NASA

Astronomers recently discovered a companion to Gliese 229 B, the first confidently identified brown dwarf. This discovery resolves the conflict between Gliese 229 B’s observed mass and the predictions of evolutionary models, potentially illuminating the nature of other poorly understood brown dwarf systems as well.

An illustration of a brown dwarf. Brown dwarfs aren’t actually brown, likely spanning a range of colors from reddish-orange to nearly black. Credit: NASA/JPL-Caltech

First in Its Class

In 1995, Gliese 229 B became the first object to be unambiguously classified as a brown dwarf: an object that bridges the gap between planets and stars. At roughly 13–80 times the mass of Jupiter, brown dwarfs aren’t massive enough to sustain fusion of hydrogen in their cores, as stars do, but they are able to burn a heavier form of hydrogen called deuterium, setting them apart from planets. (The most massive brown dwarfs can burn lithium as well.) After exhausting their supply of deuterium, brown dwarfs steadily cool, sliding down the spectral-type ladder. The youngest and most massive brown dwarfs occupy late M spectral types, while older or less massive brown dwarfs are classified as L, T, or Y dwarfs.

While improved telescopes have advanced our understanding of brown dwarfs, there’s still much we don’t know about these objects, and attempts to study and classify brown dwarfs have been confounded by their complex properties. This is the case for the first confirmed T-class brown dwarf, Gliese 229 B, which recently became the subject of an astronomical mystery.

The large relative radial velocity between Gliese 229 A and 229 B and the large difference in Gliese 229 B’s radial velocity between the two time periods provides firm evidence for the existence of an unseen companion. Credit: Whitebook et al. 2024

A Mass Mystery

Soon after Gliese 229 B was discovered, researchers used substellar evolution models to interpret the object’s spectrum and luminosity and estimate its mass at 30–50 Jupiter masses. More than two decades later, refined observations of the brown dwarf’s orbit around its red dwarf host star allowed researchers to calculate its mass dynamically. The newly calculated mass — 71 Jupiter masses — was troubling. According to models of how substellar objects cool as they age, it simply wasn’t possible for a 71-Jupiter-mass object of Gliese 229 B’s age to have cooled to its present temperature.

This conflict between dynamical mass measurements and evolutionary model predictions led researchers to suspect that Gliese 229 B is actually a binary system — a brown dwarf harboring an unseen companion. In March and November of 2022, Samuel Whitebook (University of California, Santa Barbara; California Institute of Technology) and coauthors turned one of the giant telescopes of Keck Observatory toward the Gliese 229 system, using the sensitive High Resolution Echelle Spectrometer to search for evidence of a companion tugging on Gliese 229 B. The team found a clear difference in Gliese 229 B’s radial velocity compared to expectations for an orderly orbit around its host star. Its radial velocity changed by 11σ between the observations, completely ruling out the possibility that Gliese 229 B is a single object.

 Likelihood distribution of the orbital period and mass for the companion object.
Credit: Whitebook et al. 2024

Single No More

What do these observations tell us about the newfound companion? While it’s not possible to fully pin down the properties of the companion object from current observations, Whitebook’s team estimated the companion’s mass to be somewhere between 15 and 35 Jupiter masses with an orbital period between a few days and 60 days. Future observations will refine the companion’s orbit and provide an accurate estimate of the masses of the two components.

In addition to solving the mystery of Gliese 229 B, this discovery may help to explain other seemingly over-massive T dwarfs orbiting main-sequence stars, several of which have been discovered in the past decade. If future work reveals that these too-massive T dwarfs are actually pairs of brown dwarfs, that may suggest that T dwarfs orbiting main-sequence stars are more likely to host companions than T dwarfs in the field, which are usually solo.

By Kerry Hensley

Citation

“Discovery of the Binarity of Gliese 229B, and Constraints on the System’s Properties,” Samuel Whitebook et al 2024 ApJL 974 L30. doi:10.3847/2041-8213/ad7714



Thursday, January 27, 2022

CU Boulder scientists bring stellar flares into clearer focus


At the top of the page: An artist’s impression of a superflaring star (NASA’s Goddard Space Flight Center). Above: This animation shows how a dip in the observed brightness of a star may indicate the presence of a planet passing in front of it, an occurrence known as a transit (NASA's Goddard Space Flight Center).

In work that has implications for the search for life elsewhere in the galaxy, scientists analyze data from 440 stellar flares and find them to be not just common and powerful, but also more complex than previously thought

Armed with a new statistical analysis of stellar flares on hundreds of distant stars, scientists are beginning to understand the likelihood that remote “exoplanets” might sustain life in our galaxy, research at the University of Colorado Boulder suggests.

The most-intense flares, which are more complex than previously observed, could have implications for the viability of life on nearby planets.

Ward Howard, a postdoctoral researcher who led the study, and Meredith MacGregor, assistant professor of astrophysical and planetary sciences at CU Boulder, conducted the first large-scale analysis of solar-flare data collected at 20-second intervals from NASA’s TESS mission. Their findings are soon to be published in The Astrophysical Journal.

TESS—the Transiting Exoplanet Survey Satellite—was launched in 2018 to search for planets outside of our solar system, including those that could support life.

The satellite detects those planets when they periodically block part of the light as they pass in front of their host stars, events called “transits.” The stars in question are M dwarf stars, which compose about 70% of the stars in our galaxy. Those stars are cooler and dimmer than Earth’s sun but are prone to explosive superflares—10 to 1,000 times larger than flares from our sun.

Superflares could destroy a nearby planet’s atmosphere, particularly because exoplanets in the “habitable zone” of these stars can be 20 times closer to their stars than we are to the sun.

“The sun is very well behaved,” Howard said. “Many of these red dwarf stars can emit flares 1,000 times larger than those from the sun, and you can only imagine what that might do to a planet or to life on the surface.”

The 20-second TESS data reveal the building blocks of the flare emission and informs how much radiation reaches the planets during the brief peaks of the flares.

By analyzing data from 440 large stellar flares from TESS, scientists are starting to “pull back the curtain” on questions of which exoplanets might have atmospheres that are conducive to life, and which would be “dead rocks,” Howard said.

Additionally, the new CU Boulder analysis of the flares shows the flares to be “super complicated, MacGregor said. “They have all sorts of weird structure in the light curves, which indicates that some of them are bursting multiple times.”

“We have historically had a very simple picture of stellar activity, where one loop breaks and we have one outburst of energy, and then it slowly dies away, and then we think about the frequency of that,” she continued. “That's the model that's been fed into everything we think about stars and their impact on planets, and it’s clearly just flat-out wrong.”

Although TESS’s primary mission is to detect exoplanets, the fact that TESS stares at certain parts of the sky for a month at a time also allows the instrument to detect stellar flares and superflares, which are rare and random events.

Solar and stellar flares result from entangled magnetic fields, and they release huge bursts of radiation and charged particles.

“Our sun does this, and we can get beautiful images where you see these loops of emission protruding out of the surface of the sun, and then they break and stream out into space,” MacGregor said. When those particles and radiation hit the Earth’s upper atmosphere, they can dissociate atmospheric molecules, causing the aurora borealis in northern latitudes and aurora australis in the southern.

“So we see beautiful lovely green lights,” MacGregor said. “What we're actually observing is the effect of our sun splitting apart molecules in our atmosphere and then the release of energy from that splitting of things like ozone and water.”

As originally deployed, TESS captured data every two minutes, a frequency sufficient to detect exoplanets but insufficient to gather detailed data on the incidence of stellar flares affecting those planets.

“It allows us to kind of have a statistical understanding of how often do certain things occur,” Howard said, adding that scientists have never before been able to determine how much radiation reaches planets during the peak of the superflares and how much complexity the flares have.

The James Webb Space Telescope, launched in December, is poised to further probe these questions, MacGregor and Howard said. In addition to seeking information about the earliest stages of the universe, it will look for atmospheres on exoplanets, aiming to determining what kind of atmospheres they have and whether they might support life.

“This field of astrobiology and exoplanet research is changing so quickly right now, that it makes it a really exciting area to work in,” MacGregor said.

By Clint Talbott




Monday, June 14, 2021

Scientists discover new exoplanet with an atmosphere ripe for study

An artist's rendering of TOI-1231 b, a Neptune-like planet about 90 light years away from Earth
Credit: NASA/JPL-Caltech

An international group of collaborators, including scientists from NASA’s Jet Propulsion Laboratory and The University of New Mexico, have discovered a new, temperate sub-Neptune sized exoplanet with a 24-day orbital period orbiting a nearby M dwarf star. The recent discovery offers exciting research opportunities thanks to the planet’s substantial atmosphere, small star, and how fast the system is moving away from the Earth.

The research, titled TOI-1231 b: A Temperate, Neptune-Sized Planet Transiting the Nearby M3 Dwarf NLTT 24399, will be published in a future issue of The Astronomical Journal. The exoplanet, TOI-1231 b, was detected using photometric data from the Transiting Exoplanet Survey Satellite (TESS) and followed up with observations using the Planet Finder Spectrograph (PFS) on the Magellan Clay telescope at Las Campanas Observatory in Chile. The PFS is a sophisticated instrument that detects exoplanets through their gravitational influence on their host stars. As the planets orbit their hosts, the measured stellar velocities vary periodically, revealing the planetary presence and information about their mass and orbit.

The observing strategy adopted by NASA's TESS, which divides each hemisphere into 13 sectors that are surveyed for roughly 28 days, is producing the most comprehensive all-sky search for transiting planets. This approach has already proven its capability to detect both large and small planets around stars ranging from sun-like down to low-mass M dwarf stars. M dwarf stars, also known as a red dwarf, are the most common type of star in the Milky Way making up some 70 percent of all stars in the galaxy.

M dwarfs are smaller and possess a fraction of the sun’s mass and have low luminosity. Because an M dwarf is smaller, when a planet of a given size transits the star, the amount of light that is blocked out by the planet is larger, making the transit more easily detectable. Imagine an Earth-like planet passing in front of a star the size of the sun, it's going to block out a tiny bit of light; but if it's passing in front of a star that's a lot smaller, the proportion of light that's blocked out will be larger. In a sense, this creates a larger shadow on the surface of the star, making planets around M dwarfs more easily detectable and easier to study.

Although it enables the detection of exoplanets across the sky, TESS's survey strategy also produces significant observational biases based on orbital period. Exoplanets must transit their host stars at least twice within TESS 's observing span to be detected with the correct period by the Science Processing Operations Center (SPOC) pipeline and the Quick Look Pipeline (QLP), which search the 2-minute and 30-minute cadence TESS data, respectively. Because 74 percent of TESS' total sky coverage is only observed for 28 days, the majority of TESS exoplanets detected have periods less than 14 days. TOI-1231 b’s 24-day period, therefore, makes its discovery even more valuable.

NASA JPL scientist Jennifer Burt, the lead author of the paper, along with her collaborators including Diana Dragomir, an assistant professor in UNM’s Department of Physics and Astronomy, measured both the radius and mass of the planet.

“Working with a group of excellent astronomers spread across the globe, we were able to assemble the data necessary to characterize the host star and measure both the radius and mass of the planet,” said Burt. “Those values in turn allowed us to calculate the planet’s bulk density and hypothesize about what the planet is made out of. TOI-1231 b is pretty similar in size and density to Neptune, so we think it has a similarly large, gaseous atmosphere.”

“Another advantage of exoplanets orbiting M dwarf hosts is that we can measure their masses easier because the ratio of the planet mass to the stellar mass is also larger. When the star is smaller and less massive, it makes detection methods work better because the planet suddenly plays a bigger role as it stands out more easily in relation to the star,” explained Dragomir. “Like the shadow cast on the star. The smaller the star, the less massive the star, the more the effect of the planet can be detected.

“Even though TOI 1231 b is eight times closer to its star than the Earth is to the Sun, its temperature is similar to that of Earth, thanks to its cooler and less bright host star,” says Dragomir. “However, the planet itself is actually larger than earth and a little bit smaller than Neptune – we could call it a sub-Neptune.”

Burt and Dragomir, who actually initiated this research while they were Fellows at MIT’s Kavli Institute, worked with scientists specializing in observing and characterizing the atmospheres of small planets to figure out which current and future space-based missions might be able to peer into TOI-1231 b’s outer layers to inform researchers exactly what kinds of gases are swirling around the planet. With a temperature around 330 Kelvin or 140 degrees Fahrenheit, TOI-1231 b is one of the coolest, small exoplanets accessible for atmospheric studies discovered thus far.

Past research suggests planets this cool may have clouds high in their atmospheres, which makes it hard to determine what types of gases surround them. But new observations of another small, cool planet called K2-18 b broke this trend and showed evidence of water in its atmosphere, surprising many astronomers.

“TOI-1231 b is one of the only other planets we know of in a similar size and temperature range, so future observations of this new planet will let us determine just how common (or rare) it is for water clouds to form around these temperate worlds,” said Burt.

Additionally, with its host star's high Near-Infrared (NIR) brightness, it makes an exciting target for future missions with the Hubble Space Telescope (HST) and the James Webb Space Telescope (JWST). The first set of these observations, led by one of the paper’s co-authors, should take place later this month using the Hubble Space Telescope.

“The low density of TOI-1231 b indicates that it is surrounded by a substantial atmosphere rather than being a rocky planet. But the composition and extent of this atmosphere are unknown!” said Dragomir. “TOI-1231 b could have a large hydrogen or hydrogen-helium atmosphere, or a denser water vapor atmosphere. Each of these would point to a different origin, allowing astronomers to understand whether and how planets form differently around M dwarfs when compared to the planets around our Sun, for example. Our upcoming HST observations will begin to answer these questions, and JWST promises an even more thorough look into the planet’s atmosphere.”

Another way to study the planet’s atmosphere is to investigate whether gas is being blown away, by looking for evidence of atoms like hydrogen and helium surrounding the planet as it transits across the face of its host star. Generally, hydrogen atoms are almost impossible to detect because their presence is masked by interstellar gas. But this planet-star system offers a unique opportunity to apply this method because of how fast it’s moving away from the Earth.

“One of the most intriguing results of the last two decades of exoplanet science is that, thus far, none of the new planetary systems we’ve discovered look anything like our own solar system,” said Burt. “They’re full of planets between the size of Earth and Neptune on orbits much shorter than Mercury’s, so we don’t have any local examples to compare them to. This new planet we’ve discovered is still weird – but it’s one step closer to being somewhat like our neighborhood planets. Compared to most transiting planets detected thus far, which often have scorching temperatures in the many hundreds or thousands of degrees, TOI-1231 b is positively frigid.”

In closing, Dragomir reflects that “this planet joins the ranks of just two or three other nearby small exoplanets that will be scrutinized with every chance we get and using a wide range of telescopes, for years to come so keep an eye out for new TOI-1231 b developments!”

** This article is in press at The Astronomical Journal. A pre-print version can be found here.

By Steve Carr

Media Contact
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Manager, Communications
University of New Mexico
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