Study: 91亚色 U planetary scientist puts Mars lake theory on ice with new study that offers聽alternate聽explanation
Interdisciplinary investigation of the planet鈥檚 south pole points to clays being the likely culprit
TORONTO, July 29, 2021聽鈥聽For years scientists have been debating what might lay under the Martian planet鈥檚 south polar cap after bright radar reflections were discovered and initially attributed to water. But now, a聽new聽study published in聽,聽led by planetary scientists from Lassonde School of Engineering at 91亚色, puts that theory to rest and demonstrates for the first time that another material is most likely the answer.
Research led by Isaac Smith, Canada Research Chair and聽assistant professor of聽Earth聽and Space Science at Lassonde聽School of Engineering and research scientist at the Planetary Science Institute, uses聽multiple lines of evidence to show that聽smectites, a common type of clay, can explain all of the observations,聽putting the Mars lake theory on ice.
"Since being first reported as bodies of water, the scientific community has shown skepticism about the lake hypothesis and recent publications questioned if it was even possible to have liquid water," said Smith. Papers in 2018 and 2021 demonstrated that the amount of salt and heat聽required聽to thaw ice at the bottom of the polar cap was much more than Mars provides, and recent evidence showing these radar detections are much more widespread 鈥 to places even harder to thaw ice 鈥 put the idea further into question.

Mars South Polar Layered Deposits on top of Martian Smectites: The multi-kilometer thick south polar ice cap has a base that is composed, at least partially, of a common type of clays. These clays are found over nearly half of the planet's surface and now at the edges of the ice cap. Radar measurements of the clays from a lab led by Smith show that they can explain the bright reflections observed by MARSIS, a simpler explanation than bodies of liquid water.聽Credits: ESA/DRL/FU Berlin (top), NASA (bottom).
The research team, which includes researchers from the University of Arizona, Cornell, Purdue and Tulane universities, used聽experimental and聽modelling聽work to demonstrate that聽smectites聽can better explain the radar observations made聽by the聽MARSIS聽instrument聽aboard the European Space Agency鈥檚 Mars Express orbiter. Further, they found spectral evidence that聽smectites聽are present at the edges of the south polar cap.
鈥淪mectites聽are very abundant on Mars, covering about half the planet, especially in the聽Southern Hemisphere," said Smith. 鈥淭hat knowledge, along with the radar properties of聽smectites聽at cryogenic temperatures, points to them being the most likely explanation to the riddle."
Experiments done at 91亚色 measured the radar characteristics of hydrated聽smectites聽at room temperature and cryogenic temperatures. The radar characteristics in question are two numbers that represent the real and imaginary parts of the dielectric constant. Both numbers are important for fully characterizing a material, but the 2018 study used聽modelling聽that included only the real part of the dielectric value, leaving out certain classes of materials from being considered 鈥 namely clays.

Spectral color map from the CRISM instrument on Mars Reconnaissance Orbiter draped over HiRISE imagery at the edge of the south polar ice cap. Specific colors from this map indicate the presence of smectite clays, an important discovery that helps to explain the MARSIS radar observations. Credit: NASA/JPL/UA.
Once the experimental measurements were completed, data was evaluated using code. It was in these simulations researchers聽found that frozen clays have numbers big enough to make the reflections.
Smectites聽are a class of clay that is formed when basalt (the volcanic rock that comprises most of Mars' surface) breaks down chemically in the presence of liquid water.
"Detecting possible clay minerals in and below the south polar ice cap is important because it tells us that the ice includes sediments that have interacted with water sometime in the past, either in the ice cap or before the ice was there,鈥 said Briony Horgan, co-author and associate professor in Earth, Atmospheric, and Planetary Sciences at Purdue University. 鈥淪o, while our work shows that there may not be liquid聽water and an associated habitable environment for life under the cap today, it does tell us about water that existed in this area in the past."
To support this new hypothesis,聽Smith聽conducted聽experiments in his聽lab聽with equipment designed for measuring dielectric values. To simulate the conditions beneath Mars's south polar cap as best as possible, his team froze the clays to -50 C and measured them again, something that had never been done before.聽Smith adds that the infrared absorptions attributable to these minerals are present in south polar orbital聽visible-near聽infrared reflectance spectra. Because these minerals are both present at the聽south pole聽and can cause the reflections, the team believes this to be a more viable scenario than the presence of liquid water. No salt or heat is聽required.
鈥淲e used our聽lab聽measurements of clay minerals as the input for a radar reflection model and found that the results of the model matched very well with the real, observed data,鈥 said Dan聽Lalich,聽post-doctoral聽researcher at the聽Cornell Center for Astrophysics and Planetary Science聽at Cornell University and second author on the study. 鈥淲hile it's disappointing that liquid water might not actually be present below the ice today, this is still a cool observation that might help us learn more about conditions on ancient Mars.鈥
"We analyzed the聽MARSIS聽radar data and identified observations with high-power values at the base of the south polar layered deposits, both in the proposed lake region and elsewhere," said聽Jenny Whitten, co-author and planetary scientist in the聽Department of聽Earth聽and Environmental Sciences at Tulane University.
"The first reason the bright reflectors cannot be water is because some of them continue from underground onto the surface. If that is the case, then we should see springs, which we don't," said Stefano聽Nerozzi,聽post-doctoral聽fellow in the聽Lunar and Planetary Laboratory and Department of Geosciences at the University of Arizona and co-author.聽"Not only that, but multiple reflectors are stacked on top of each other, and some are even found right in the middle of the polar cap. If this were water, this would be physically impossible."
Putting the results in perspective Smith says the answer is clear.
鈥淣ow, we have the trifecta. One, we measured dielectric properties of materials that are known to exist on over 50 per cent of Mars' surface and found them to have very high values. Two, we聽modelled聽how those numbers would respond in Mars' south-polar conditions and found them to match the radar observations well. Three, we demonstrated that these minerals are at the聽south pole. Because the liquid water theory聽required聽incredible amounts of heat which is six-to-eight times more than Mars provides, and more salt than Mars has, it was聽already聽implausible. Now, the clays can explain the observations with absolutely no qualifiers or asterisks.鈥
About 91亚色
91亚色聽is a modern,聽multi-campus, urban university located in Toronto, Ontario. Backed by a diverse group of students, faculty, staff, alumni and partners, we bring a uniquely global perspective to help solve societal challenges, drive positive change and prepare our students for success. 91亚色's fully bilingual Glendon Campus is home to聽Southern Ontario's Centre of Excellence for French Language and Bilingual聽Postsecondary聽Education. 91亚色鈥檚 campuses in Costa Rica and India offer students exceptional transnational learning聽opportunities聽and innovative programs. Together, we can make things right for our communities, our planet, and our future.
About Lassonde School of Engineering
Located in the heart of the multicultural Greater Toronto Area, the聽听补迟听91亚色聽ishome to engineers, scientists and entrepreneurs, representing a diverse community of students, faculty, staff, alumni and partners. With 11 undergraduate programs, seven graduate programs and a host of certificates and accessible study options, Lassonde is shaping the next generation of creators who will tackle the world鈥檚 biggest challenges and devise creative solutions through interdisciplinary learning opportunities. Lassonde鈥檚 creators think in big systems rather than small silos, design with people in mind and embrace ambiguity.
Media contact:聽Kayla Lewis, 91亚色 Media Relations, cell 416-455-4710,聽lewiskay@yorku.ca






