NASA: National Aeronautics and Space Administration

  1. Content with the tag: “soil

  2. A search for primordial water from deep in the Earth's mantle

    ROADMAP OBJECTIVES: 1, 4

    A Self-Perpetuating Catalyst for the Production of Organics in Protostellar Nebulae

    ROADMAP OBJECTIVES: 1, 3

    Acquisition and Installation of a new Cameca ims 1280 ion microprobe

    ROADMAP OBJECTIVES:

    Advancing Techniques for in situ Analysis of Complex Organics

    ROADMAP OBJECTIVES: 2, 2, 3, 3, 7

    Application of U-tube and fiber-optic distributed temperature sensor to characterize the chemical and physical properties of a deep permafrost and sub-permafrost environment at High Lake, Nunavut, Canada.

    ROADMAP OBJECTIVES: 2, 5, 5, 7

    Astrobiology Sample Analysis Program (ASAP)

    ROADMAP OBJECTIVES:

    Biological potential of Mars

    ROADMAP OBJECTIVES: 2, 3

    Biosignatures in chemosynthetic and photosynthetic systems

    ROADMAP OBJECTIVES: 2, 4, 5, 5, 6, 7, 7

    Breakdown of methane due to electric discharge: A Laboratory Investigation with Relevance to Mars

    ROADMAP OBJECTIVES: 2

    Chemical Models of Nebular Processes

    ROADMAP OBJECTIVES: 1

    Composition of Parent Volatiles in Comets: Oxidized Carbon

    ROADMAP OBJECTIVES:

    Current Status and Future Bioastronomy with the Large Millimeter Telescope

    ROADMAP OBJECTIVES: 3

    Early Metabolic Pathways

    ROADMAP OBJECTIVES: 2, 3

    Early Metabolic Pathways

    ROADMAP OBJECTIVES: 3, 3

    Fingerprinting Late Additions to the Earth and Moon via the Study of Highly Siderophile Elements in Lunar Impact Melt Rocks

    ROADMAP OBJECTIVES: 1

    Formation and Detection of Hot-Earth Objects in Systems with Close-in Jupiters

    ROADMAP OBJECTIVES: 1, 1

    Formation of Planetesimals in a Dynamically Evolving Nebula

    ROADMAP OBJECTIVES: 1

    Genes that regulate photosymbiotic relationships

    ROADMAP OBJECTIVES: 2

    Habitable Planets

    ROADMAP OBJECTIVES: 1, 1, 2, 4

    Icelandic subglacial lakes

    ROADMAP OBJECTIVES: 2, 4, 5, 6

    Interplanetary Pioneers

    ROADMAP OBJECTIVES: 5, 6

    Microbial Communities and Activities in the Deep Marine Subsurface

    ROADMAP OBJECTIVES: 5, 5, 6, 6

    Modeling grain surface reaction pathways for large organic molecules

    ROADMAP OBJECTIVES: 3

    Organic and Inorganic Acids from Ion-irradiated Ices

    ROADMAP OBJECTIVES: 2, 3, 7

    Origin and Evolution of Organics

    ROADMAP OBJECTIVES: 1, 2, 3

    Origin and Evolution of Organics in Planetary Systems

    ROADMAP OBJECTIVES: 1, 3, 3

    Origin of Irregular Satellites

    ROADMAP OBJECTIVES: 1

    Prebiotic Organics from Space

    ROADMAP OBJECTIVES: 1, 2, 2, 3, 3, 4, 7, 7

    Protist diversity in extreme environments

    ROADMAP OBJECTIVES: 6, 7

    Recovery of comet 85P/Boethin for the Deep Impact Extended Mission

    ROADMAP OBJECTIVES: 2

    Research Activities in the Astrobiology Analytical Laboratory

    ROADMAP OBJECTIVES: 1, 2, 2, 3, 7

    Sediment-buried basement deep biosphere

    ROADMAP OBJECTIVES: 1, 3, 4, 5, 5, 5, 6, 6

    Societal and Philosophical Aspects of Astrobiology

    ROADMAP OBJECTIVES: 18

    Studies in Planetary Formation and Evolution

    ROADMAP OBJECTIVES: 8, 9, 11, 12

    Studies of Organic Matter and Water in Meteorites

    ROADMAP OBJECTIVES: 1, 8, 9, 11

    The Main Belt distribution of basaltic asteroids

    ROADMAP OBJECTIVES: 2

    THE VYSOS PROJECT

    ROADMAP OBJECTIVES: 1

    Ultra-violet processing of ices in the Rosette Nebula

    ROADMAP OBJECTIVES: 3

    Understanding the Microbial Ecology of Geologically-based Chemolithoautotrophic Communities

    ROADMAP OBJECTIVES: 2, 4
  3. Phoenix Scrapes 'Almost Perfect' Icy Soil For Analysis


    NASA’s Phoenix Mars Lander enlarged the “Snow White” trench and scraped up little piles of icy soil on Saturday, June 28, the 33rd Martian day, or sol, of the mission. Scientists say that the scrapings are ideal for the lander’s analytical instruments.

    The robotic arm on Phoenix used the blade on its scoop to make 50 scrapes in the icy layer buried under subsurface soil. The robotic arm then heaped the scrapings into a few 10- to 20-cubic centimeter piles, or piles each containing between two and four teaspoonfuls. Scraping created a grid about...

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  4. Phoenix Shake and Bake


    In this interview, William Boynton talks about the TEGA instrument on the Phoenix Lander, and explains what it can tell us about the possibility for life on Mars.

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  5. NASA Phoenix Lander Bakes Sample, Arm Digs Deeper


    One of the ovens on NASA’s Phoenix Mars Lander continued baking its first sample of Martian soil over the weekend, while the Robotic Arm dug deeper into the soil to learn more about white material first revealed on June 3.

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    Source: [Phoenix Mission]

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  6. NASA's Phoenix Mars Lander Inspects Delivered Soil Samples


    New observations from NASA’s Phoenix Mars Lander provide the most magnified view ever seen of Martian soil, showing particles clumping together even at the smallest visible scale.

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    Source: [Phoenix Mission]

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  7. NASA's Phoenix Mars Lander Delivers Soil Sample To Microscope


    Phoenix Mars Lander

    NASA’s Phoenix Mars Lander sprinkled a spoonful of Martian soil Wednesday onto the sample wheel of the spacecraft’s robotic microscope station, images received early Thursday confirmed.

    “It looks like a light dusting and that’s just what we wanted. The Robotic Arm team did a great job,” said Michael Hecht of NASA’s Jet Propulsion Laboratory, Pasadena, Calif. He is the lead scientist for the Microscopy, Electrochemistry and Conductivity Analyzer (MECA) instrument on Phoenix.

    The delivery of scooped-up soil for inspection by the lander’s Optical Microscope, a component of MECA, marks the second success in consecutive days for...

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    Source: [Phoenix Mission]

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  8. NASA's Phoenix Lander Has an Oven Full of Martian Soil


    NASA’s Phoenix Mars Lander has filled its first oven with Martian soil.

    “We have an oven full,” Phoenix co-investigator Bill Boynton of the University of Arizona, Tucson, said today. “It took 10 seconds to fill the oven. The ground moved.”

    Boynton leads the Thermal and Evolved-Gas Analyzer instrument, or TEGA, for Phoenix. The instrument has eight separate tiny ovens to bake and sniff the soil to assess its volatile ingredients, such as water.

    The lander’s Robotic Arm delivered a partial scoopful of clumpy soil from a trench informally called “Baby Bear” to the number 4 oven on TEGA last Friday,...

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  9. Sprinkle to Taste



    Phoenix was unable to chew on the clumpy martian soil, so the team operating the Lander plans to sprinkle the soil instead. The spoonful of soil will fall onto a wheel, which will then rotate the sample so the Lander’s eagle eye — the Optical Microscope — can see it.

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