Possible Organic Compounds Found in Mars Crater Rocks

Jezero crater.
Jezero crater. Rock samples from the Jezero crater analyzed by the Perseverance rover show evidence of liquid water and signatures that could be organic compounds. (Image: via NASA)

A study published in Science analyzes multiple rocks found at the bottom of Jezero Crater on Mars, where the Perseverance rover landed in 2020, revealing significant interaction between the rocks and liquid water. Those rocks also contain evidence consistent with the presence of organic compounds.

The existence of organic compounds (chemical compounds with carbon-hydrogen bonds) is not direct evidence of life, as these compounds can be created through non-biological processes. A future mission returning the samples to Earth would be needed to determine this.

Perseverance previously found organic compounds at Jezero’s delta.
This illustration shows Jezero crater — the landing site of the Mars 2020 Perseverance rover — as it may have looked billions of years ago on Mars, when it was a lake. An inlet and outlet are also visible on either side of the lake. (Image: JPL-Caltech via NASA)

The study, led by researchers at Caltech, was carried out by an international team including Imperial College researchers. Professor Mark Sephton, from the Department of Earth Science & Engineering at Imperial, is a member of the science team who took part in rover operations on Mars and considered the implications of the results. He said:

“I hope that one day these samples could be returned to Earth so that we can look at the evidence of water and possible organic matter, and explore whether conditions were right for life in the early history of Mars.”

Moving water

Perseverance previously found organic compounds at Jezero’s delta. Deltas are fan-shaped geologic formations created at the intersection of a river and a lake at the edge of the crater. Mission scientists had been particularly interested in the Jezero delta because such formations can preserve microorganisms. Deltas are created when a river transporting fine-grained sediments enters a deeper, slower-moving body of water. As the river water spreads out, it abruptly slows down, depositing the sediments it is carrying and trapping and preserving any microorganisms that may exist in the water. However, the crater floor, where the rover landed for safety reasons before traveling to the delta, was more of a mystery.

This image of Jezero Crater, the landing site for the Mars Perseverance Rover, was taken by instruments on NASA's Mars Reconnaissance Orbiter, which regularly takes images of potential landing sites for future missions.
This image of Jezero Crater, the landing site for the Mars Perseverance rover, was taken by instruments on NASA’s Mars Reconnaissance Orbiter, which regularly takes images of potential landing sites for future missions. NASA chose the Jezero crater as the landing site for the Perseverance rover because scientists believe the area was once flooded with water and was home to an ancient river delta. (Image: via NASA / JPL-Caltech / MSSS / JHU-APL)

In lake beds, the researchers expected to find sedimentary rocks, because the water deposits layer after layer of sediment. However, when the rover touched down there, some researchers were surprised to find igneous rocks (cooled magma) on the crater floor with minerals in them that recorded not just igneous processes, but significant contact with water. These minerals, such as carbonates and salts, require water to circulate in the igneous rocks, carving out niches and depositing dissolved minerals in different areas like voids and cracks. In some places, the data show evidence of organics within these potentially habitable niches.

Organic compounds discovered by SHERLOC

The minerals and co-located possible organic compounds were discovered using SHERLOC, or the Scanning Habitable Environments with Raman & Luminescence for Organics & Chemicals instrument. Mounted on the rover’s robotic arm, SHERLOC is equipped with a number of tools, including a Raman spectrometer that uses a specific type of fluorescence to search for organic compounds and also see how they are distributed in a material, providing insight into how they were preserved in that location. Bethany Ehlmann, the co-author of the paper, professor of planetary science, and associate director of the Keck Institute for Space Studies, said:

“The microscopic compositional imaging capabilities of SHERLOC have really blown open our ability to decipher the time-ordering of Mars’s past environments.”

As the rover rolled toward the delta, it took several samples of the water-altered igneous rocks and cached them for a possible future sample-return mission. The samples would need to be returned to Earth and examined in laboratories with advanced instrumentation in order to determine definitively the presence and type of organics and whether they have anything to do with life.

Provided by Hayley Dunning, Imperial College London [Note: Materials may be edited for content and length.]

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  • Troy Oakes

    Troy was born and raised in Australia and has always wanted to know why and how things work, which led him to his love for science. He is a professional photographer and enjoys taking pictures of Australia's beautiful landscapes. He is also a professional storm chaser where he currently lives in Hervey Bay, Australia.

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