Written by
Asa Stahl, PhD
•
Science Review by
Bruce Betts, PhD
September 21, 2026
Whether searching for extraterrestrial intelligence or building our very own space mission, The Planetary Society has a long history of advancing cutting-edge space science and technology. Now, we are announcing the latest winners of our Science and Technology Empowered by the Public (STEP) Grants: three groups of scientists who will receive crowdfunded support for important work that furthers the scientific exploration of space.
These projects were chosen through an open call for proposals from around the world. They were selected based on their scientific value, achievability, and relevance to The Planetary Society’s core enterprises — exploring worlds, finding life, and defending Earth — among other strengths. Previous STEP Grant winners have explored the possibility of growing plants in space, used rare lakes on Earth to learn about potentially habitable moons of Jupiter and Saturn, and recruited people around the world to help search for intelligent alien life.
“Through programs like these STEP grants, TPS members and donors are helping the community make important advances,” said Jim Bell, planetary scientist at Arizona State University as well as member and former president of The Planetary Society’s board of directors. “It’s wonderful that The Planetary Society can support cutting-edge research.”
The new winners are:
A Solar System shadow-tracker
CORA+: Collaborative Occultation Resources and Archive for the Rubin Era
Amount awarded: US$30,000
Principal Investigator: Mike Kretlow, astronomer and software engineer at the German Center for Astrophysics
The Vera C. Rubin Observatory is about to flood the scientific world with discoveries, and CORA+ is designed to help humanity make the most of it. Rubin’s decade-long survey of the night sky, which began this year from atop a remote mountain in Chile, discovered 11,000 new asteroids in just six weeks of preliminary data. The telescope is expected to be especially good at finding worlds beyond the orbit of Neptune that — besides being strange, captivating places in themselves — hold evidence of the Solar System’s ancient history. Rubin is expected to multiply the known number of these trans-Neptunian objects, or TNOs, by roughly tenfold.
With CORA+, Mike Kretlow is laying the groundwork to deepen our understanding of these worlds once they are discovered. Though Rubin is expected to find tens of thousands of TNOs and other small Solar System worlds, it will not provide detailed measurements of some of their properties, including their size. Kretlow aims to fix that by equipping scientists with a powerful method to study these worlds: watching their silhouettes.
“CORA+ will enable observers, no matter where they are, to plan observations that will help transform our understanding of newly discovered objects in the Solar System,” said Bruce Betts, chief scientist at The Planetary Society. “They will become tangible, thought-provoking worlds.”
Whenever a TNO or asteroid happens to pass in front of a distant star, it casts a little shadow, blocking that star’s light from reaching us. For a brief instant, the resulting shade passes over our planet. This event is called a stellar occultation. By measuring exactly when and how the background star dimmed, scientists can learn about the silhouette of the world that passed in front of it.
Researchers have used occultations to discover rings around the outer Solar System worlds Haumea and Chariklo, to learn about the tenuous atmospheres of Pluto and Triton, and to help pin down the trajectory of Arrokoth for a visit by NASA’s New Horizons spacecraft. The method also has the power to reveal the details of a world’s size, shape, its brightness, and its surrounding moons.
To help coordinate this science, a few groups of astronomers regularly publish predictions of which stellar occultations will be happening when. These predictions are hand-curated, though, for a small number of worlds. The coming discoveries from Rubin will far outnumber what could be handled by existing occultation networks.
This project funds the expansion of an existing prediction tool, called the Collaborative Occultation Resources and Archive (CORA), to enable it to automatically handle the tens of thousands of new worlds that Rubin will soon discover. With CORA+, observers located in the path of an occultation could contribute valuable measurements if they have the right equipment, often just a relatively small telescope. The result will multiply Rubin’s impact, turning initial discoveries into a more detailed understanding of these distant worlds.
A new telescope tool to help defend Earth
Expanding access to polarimetry for planetary defense applications
Amount awarded: US$49,593
Principal Investigator: Nicholas Moskovitz, astronomer at Lowell Observatory and Northern Arizona University in Flagstaff, Arizona.
Co-Investigators: Katie Breeland-Newcomb (Lowell), Ryan Hamilton (Lowell), Stephen Levine, Maxime Devogele (ESA/NEOCC), Ben Hardesty (Lowell)
Asteroids measuring 10 meters and 100 meters across might sound similar, but if one were headed toward Earth, those sizes would spell the difference between a harmless streak in our atmosphere and an explosion powerful enough to level a city. Unfortunately, though humanity has discovered over one million asteroids to date — thousands of which orbit near Earth — scientists aren’t exactly sure how large many of them are.
Nicholas Moskovitz and his team plan to help fix that. This STEP Grant supports a tool that would make it cheaper and easier to measure asteroid sizes in order to better understand these worlds and the risks they pose. The tool, called a polarimeter, could be used by both professional and amateur astronomers on their telescopes.
“This inexpensive instrument, once developed and tested, would be another arrow in the quiver of ways to determine more accurate asteroid sizes,” said Betts.
There are several methods for determining an asteroid’s size, but each has its own limitations. The most common approach is to roughly estimate size from brightness, because larger objects tend to reflect more light — but this doesn’t always hold true If an asteroid is small but very reflective, it could still be just as bright as an asteroid that is larger, but darker. The device that Moskovitz and his team are building can undo this knot by measuring how reflective asteroids are, using a property of their reflected light called polarization.
Picture a wave of light like a rope being shaken up and down (see above image). When you shake the rope, the disturbance travels down the length of the rope, but the angle of the disturbance along the rope can be horizontal, vertical, or at some angle in between. That is its polarization.
Often, light is an even mix of waves with these different angles. But when light reflects off a surface, waves with a particular polarization get redirected more easily depending on the angle between the surface and wherever the light is coming from and bouncing toward. This is why polarized sunglasses reduce glare: they block light that is polarized in this way by, say, bouncing off a lake or road.
The same thing happens when light from the Sun bounces off an asteroid: waves with a particular polarization get reflected more easily toward Earth. A dark asteroid will tend to shine with light that shows a preference for this specific angle. Light that hits a more reflective asteroid, on the other hand, will scatter around its surface several times before it heads off into space, and the angles of those bounces will erase the polarization that the light would have had if it bounced just once.
The tool that Moskovitz’s team is building will measure these polarizations to tell how light or dark an asteroid is. The device is essentially a tube fitted with a couple of lenses, prisms, a camera detector, and two pairs of crystal wedges cemented together perpendicularly, which split light into different beams depending on its polarization.
The researchers plan to design and build this polarimeter using off-the-shelf and 3D-printed parts, so it can be relatively cheap and easy for other observers to buy or make themselves. If a large network grows to use this instrument, they would be able to quickly measure any potentially dangerous asteroid soon after it's discovered. They would also flesh out our understanding of less hazardous asteroids, too.
The Planetary Society’s award to this team will mostly go to funding the work of a Northern Arizona University graduate student, Katie Breeland-Newcomb, as she designs, builds, and tests the polarimeter on Lowell Observatory’s 4.3-meter Lowell Discovery Telescope, as well as on a 1-meter telescope.
An asteroid database for the scientific community
AsteroiDB: A Community Platform for Asteroid Photometry and Characterization
Amount awarded: US$50,080
Principal Investigator: Miguel R. Alarcon, director of scientific operations at Light Bridges and affiliated with Instituto de Astrofísica de Canarias (IAC) and the Observatorio Astronómico del Teide in Guimar, Spain.
Co-Investigators: Miquel Serra-Ricart (Light Bridges/IAC), Javier Licandro (IAC)
Whether you are a researcher at a major observatory or an amateur astronomer in your backyard, if you spot an asteroid through a telescope, you can help see if it is on a collision course with Earth. That is thanks to an online database, maintained by the Minor Planet Center, that collects hundreds of millions of observations of where asteroids are. If their measurements meet the minimum quality standards, anyone, from anywhere, can submit to it.
But for both asteroid science and planetary defense, knowing where these worlds are is only the beginning. That is why Miguel Alarcon and his team want to bring this same sharability to measurements of what asteroids are like — specifically, how their brightness varies with time and wavelength, which can tell us about their shape, size, density, and structure. They are developing a one-stop shop for people all around the world to share such measurements and analyze them easily, called AsteroiDB.
As it stands, there is no standardized, public-facing clearinghouse for these sorts of observations, though they can help inform how much danger an asteroid might pose to Earth and how easily one might be deflected. Asteroid properties like shape and chemical makeup can also hint at what the Solar System was like billions of years ago, when most asteroids formed, and how Earth has since evolved into the habitable world it is today.
AsteroiDB already exists as a pilot program, containing over 11 million measurements of over 400,000 asteroids. This STEP Grant funds its expansion into a public-facing service, building out its infrastructure to function with a broader base of users.
“Observers around the world will be able to use the AsteroidDB tools to ease collaboration. They’ll be able to improve the speed and quality of how they study the physical properties of asteroids,” Betts said.
Eventually, AsteroiDB will convene an expert panel to determine what standard formats the community should use for these measurements.
As part of this rollout, Light Bridges, the organization that operates the Two-meter Twin Telescope and the Transient Survey Telescope at Teide Observatory in the Canary Islands, will offer observing time across three different research-grade telescopes for observers to take new measurements and test sharing them with AsteroidDB. Both amateur astronomers and professional researchers can apply, and members of The Planetary Society will be notified when this call for proposals is announced.
The review panel
Proposals were reviewed by:
- Jim Bell, planetary scientist at Arizona State University and former president of The Planetary Society
- Bruce Betts, chief scientist at The Planetary Society
- John Grunsfeld, planetary scientist and former NASA astronaut
- Heidi Hammel, vice president of science for the Association of Universities for Research in Astronomy and interdisciplinary scientist for JWST
- Dipak Srinivasan, member of the Principal Staff at The Johns Hopkins University Applied Physics Laboratory
Bell, Grunsfeld, Hammel, and Srinivasan are also members of The Planetary Society’s board of directors.
Funding for these grants is made possible by the support of Planetary Society members, the Halıcıoğlu Family Foundation, and donors to our STEP Grant campaigns. Thank you for your role in advancing these important, cutting-edge projects.
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Facts Only
* CORA+ received US$30,000.
* Principal Investigator for CORA+ is Mike Kretlow, astronomer and software engineer at the German Center for Astrophysics.
* CORA+ aims to use stellar occultations to study the silhouettes of Solar System objects.
* The project funds the expansion of the Collaborative Occultation Resources and Archive (CORA) to handle new discoveries from the Vera C. Rubin Observatory.
* The polarimeter grant was awarded US$49,593.
* Principal Investigator for the polarimeter was Nicholas Moskovitz, astronomer at Lowell Observatory and Northern Arizona University.
* The polarimeter measures polarization of reflected light to determine asteroid sizes.
* AsteroidDB received US$50,080.
* AsteroiDB is a community platform for sharing measurements of asteroid photometry and characterization.
* AsteroiDB contains over 11 million measurements of over 400,000 asteroids as a pilot program.
* The review panel included Jim Bell, Bruce Betts, John Grunsfeld, Heidi Hammel, and Dipak Srinivasan.
Executive Summary
The Planetary Society announced the winners of its Science and Technology Empowered by the Public (STEP) Grants, which supported three distinct projects in space science. The selected projects were chosen based on scientific value, achievability, and relevance to the organization's focus on exploring worlds, finding life, and defending Earth.
The first grant awarded $30,000 to CORA+, a project focused on developing a Solar System shadow-tracker to help interpret data from the upcoming Vera C. Rubin Observatory. This work aims to utilize stellar occultations—shadow events caused by celestial bodies passing in front of stars—to gain detailed measurements of the size and properties of Trans-Neptunian objects (TNOs) and other Solar System worlds.
The second award, $49,593, supported the development of a new telescope tool—a polarimeter—intended to measure asteroid sizes more accurately for planetary defense applications. This instrument uses polarization measurements of reflected light to determine how reflective asteroids are, offering an alternative method to estimate size based on brightness.
The third grant, $50,080, funded AsteroidDB, a community platform designed to aggregate and analyze measurements of asteroid photometry and characterization. This database seeks to provide a centralized resource for sharing observational data regarding asteroid properties like shape, size, density, and structure among researchers and the public.
Full Take
The selection criteria for these grants demonstrate a commitment to bridging cutting-edge astronomical discovery with practical scientific application, specifically targeting the realm of Solar System exploration and planetary defense. The CORA+ initiative is an exercise in computational infrastructure development, aiming to transform raw observational data from large surveys into actionable physical measurements by exploiting the geometry of stellar occultations. This suggests a pattern where major data releases (like Rubin's) are followed by calls for infrastructure that can translate those observations into novel physical understanding.
The polarimeter project addresses fundamental epistemic gaps in asteroid science, moving beyond simple photometric estimates to utilize polarization as a robust physical proxy for shape and reflectivity. This pursuit of foundational measurement techniques, accessible via off-the-shelf technology, reflects a resistance to monolithic, institutionally constrained methods in scientific discovery. Furthermore, the creation of AsteroiDB illustrates a necessary shift toward open, community-driven data infrastructure, moving knowledge from closed institutional silos to a shared, verifiable repository.
The underlying pattern suggests that advances in space science rely equally on three pillars: massive new data acquisition (Rubin), novel measurement methodologies (occultations and polarimetry), and accessible data sharing (database platforms). The risk is that the focus on these practical applications might implicitly de-emphasize pure theoretical exploration if the funding structure continues to prioritize immediate, tangible outcomes. The successful linkage of infrastructure development with a specific mandate—understanding TNOs, mitigating asteroid risk, and facilitating communal observation—points toward an emerging paradigm where scientific utility and public engagement are inextricably linked to the allocation of resources.
Bridge Questions: If future grants shift focus away from applied tools towards pure theoretical astrophysics, what is the cost in terms of real-world opportunity lost? How can the collaborative nature of AsteroiDB be scaled without creating new hierarchies of expertise among users? Does focusing on "defending Earth" risk narrowing the scope of exploration to immediate threats while neglecting long-term, speculative cosmological questions?
Sentinel — Human
The text reads as a high-quality announcement for scientific grants, featuring specific project details and expert attribution, suggesting human authorship focused on conveying factual scientific goals.
