A new study reveals that the Atacama Desert's hyperarid core became arid 45 million years ago, contradicting previous assumptions. The research team used cosmogenic nuclide dating to analyze quartz clasts and found exceptionally high concentrations of rare isotopes, indicating that surface clasts remained undisturbed for tens of millio...
Researchers used a novel technique to analyze millions of individual particles in Antarctic ice cores, revealing common dust sources during the last Ice Age. The study highlights the importance of atmospheric circulation changes and provides insights into ancient climate systems and potential future environmental shifts.
Researchers have developed a quantitative technique to determine peak shock pressures in enstatite chondrites using micro-X-ray diffraction. This non-destructive method unlocks transformative applications for high-throughput shock screening and asteroid collision forensics.
A team of scientists simulated high-pressure conditions and found that onion-like layering in iron alloys can explain seismic anomalies in the Earth's inner core. This discovery suggests a compositional gradient with increasing core depth, linking anisotropy to chemical stratification.
Researchers investigated the geochemical behavior of calcium isotopes during carbonate weathering in the Lancang River. The study found that dissolved Ca showed variations of δ44/40Ca values along the river flow, with suspended sediments enriched in light Ca isotopes controlled by mineralogy.
A research team from the Chinese Academy of Sciences found that lunar surface water has a global source in the solar wind, with its distribution mainly controlled by latitude and regolith maturity. The study used samples from China's Chang'e-6 mission and NASA's Apollo missions to analyze the abundance and origin of lunar surface water.
The University of the Witwatersrand has launched the Earth Observatory and CORES, aiming to drive innovation in the minerals sector. The observatory provides cutting-edge geoanalytical techniques, while CORES integrates economic geology, extractive processes, and data-driven innovation to promote sustainable mining practices.
Madison Myers, an associate professor at Montana State University, has been recognized by the Geological Society of America for her contributions to volcanic field-based work. Her research focuses on monitoring Yellowstone's volcano, with a particular emphasis on effective communication of science to the public.
The M-Cube associated research laboratory combines micron-level visualization tools with precise mineralogical and geochemical analyses to identify new avenues for optimizing the mining cycle. The collaboration aims to reduce the environmental impact of uranium mining sites and better understand the mobility of radioactive descendants.
The study of Neanderthal footprints offers a unique window into everyday behaviour, providing insight into their physical presence, locomotion strategies, diet and social structure. The research suggests that Neanderthals were more versatile and ecologically adapted to coastal environments than previously believed.
Researchers use a combination of materials science and human genetics to map out the properties of enamel and dentin development in mouse incisors. Their methodology has the potential to provide new insights into identifying and treating rare craniofacial diseases and common dental cavities.
Researchers have discovered that rocks from the Earth-facing side of the Moon contain a surprisingly high amount of chlorine, suggesting volcanic eruptions may be responsible for its distribution. This finding provides new clues about the Moon's origin and evolution, including the formation and chemical changes of its crust.
The Curiosity rover has identified high concentrations of carbonate minerals, indicating a carbon cycle operated on ancient Mars. The findings suggest that large amounts of carbon dioxide were locked into the planet's crust, providing insights into the planet's past climate.
Scientists at Helmholtz Centre for Environmental Research - UFZ have discovered chimney-shaped vents on the Dead Sea floor, emitting shimmering fluid. The chimneys are similar to black smokers but originate from surrounding aquifers, providing a new tool for predicting sinkhole formation.
A team of geoscientists has identified the origin of the massive asteroid that wiped out 70% of Earth's species 66 million years ago. The study found the asteroid was a carbonaceous-type asteroid that formed outside Jupiter's orbit.
A nearly continuous 1268-meter-long drill core of serpentinized abyssal mantle peridotite has provided new insights into Earth's deep geology and the potential biogeochemical conditions involved in the origins of life. The findings reveal significant mineralogical variations, including low pyroxene content and oblique melt migration.
An international team has recovered a nearly continuous 1,268-metre-long section of rocks that originated in the Earth's mantle, providing insights into the role of the mantle in the origins of life on Earth, volcanic activity, and global cycles. The study also reveals new information about how magma is formed and feeds volcanoes.
Oregon State University researchers have developed a new pigment based on divalent chromium, which could be used as energy-efficient coatings for vehicles and buildings. The pigments are stable and reflective of heat from the sun, leading to potential energy savings.
A recent study using synchrotron experiments found that elastic differential stress can develop mineral fabrics in rocks, even before irreversible strain accumulates. This challenges conventional knowledge that only differential stress is needed for fabric development. The research has implications for understanding the role of stress ...
A team from the University of Münster has detected biologically relevant nitrogen compounds and amino acids in an untreated English meteorite. The findings were made possible by a new type of detector design and high-resolution electron microscopy, offering insights into the origins of life on Earth.
The EXPLORE toolkit offers interactive visual analytics and machine learning to analyze galaxy data, identify unusual stars, and visualize the lunar surface. Users can create immersive experiences, including 3D models of the Moon and interactive sky maps.
A groundbreaking study on Ryugu samples has revealed the impact of terrestrial weathering on primitive meteorite spectra. The findings suggest that actual CI chondrite parent bodies likely exhibit darker and flatter reflectance spectra than previously thought.
Researchers discovered 'mummified' bees in their brood cells, preserving them for 3,000 years due to exceptional conservation. The bees' cause of death remains unknown but is linked to oxygen shortages and changing temperatures in southwest Portugal.
Researchers from Chapman University and other institutions developed a new interference radar function that improves distance resolution between objects using radar waves. The technology breaks the trade-off between resolution and wavelength, allowing for high spatial resolution with long wavelengths.
For the first time, researchers reveal that gold nanoparticles can melt and produce gold nanomelts at temperatures lower than macroscopic gold. This discovery opens a new debate on traditional models for gold transport in nature.
A new study published in Geology evaluates the potential for domestic cobalt extraction from the Idaho Cobalt Belt, which hosts the second largest known domestic resource of critical mineral cobalt. The researchers conclude that the ore from Idaho should be divided and processed for copper and cobalt separately to meet growing demand.
A new study maps Australia's terrestrial and blue carbon soils, revealing the continent holds 27.9 gigatonnes of carbon, equivalent to 700 times annual electricity emissions. The research emphasizes the need to protect key ecosystems threatened by human activities and climate change.
Daniel Herwartz receives 2 million euros funding from ERC Consolidator Grant for his project KinO, which explores temperature fluctuations associated with mass extinction and improves temperature reconstructions of ancient ocean temperatures.
A previously unidentified marine reptile fossil from Svalbard has been classified using X-ray analysis, providing unique insights into ancient life in the Norwegian archipelago. The study's findings suggest that fossils from this formation are particularly well-suited for radiographic imaging due to the presence of sulfur minerals.
A study by University of Cologne researchers found that 25-35% of permafrost's organic carbon is bound to mineral particles, making it harder for microorganisms to utilize. This complex binding process affects the release of greenhouse gases from thawing permafrost.
A team of scientists, led by University of South Florida professor Matthew Pasek, discovered a new phosphorus material in a fulgurite created by a lightning strike. The material is transitional between space minerals and those found on Earth, and its formation could have implications for our understanding of high-energy events.
Researchers identified seven exotic igneous clasts in Chang'e-5 samples, providing critical information about the Moon's lithological diversity and regolith gardening process. The findings indicate that there are still unknown geological units on the moon, which may aid future lunar exploration missions.
Researchers recreated primordial seawater containing phosphate in the lab, suggesting that seawater could be a major source of this essential element. This finding has implications for understanding the origins of life on Earth and potentially even beyond our planet.
A new study in Frontiers in Earth Science questions the link between climate change and ecosystem diversity during the origin of dinosaurs in Argentina. The researchers found that variations in species abundance cannot be explained by climatic changes, instead attributing it to preservation and sampling biases.
A new study has found higher levels of silica dust in the lung tissue of contemporary coal miners compared to previous generations, providing a rationale for the Mine Safety and Health Administration to develop a more protective occupational standard for silica. The study suggests that changing mining practices, which generated more si...
A new study has found a clear link between silica exposure and severe black lung disease in contemporary coal miners. The researchers attributed the resurgence of progressive massive fibrosis to changes in mining technology, such as mechanized coal extraction devices introduced in the 1950s.
A new Yale-led study reveals that arc magmas have a higher oxidation state than rocks in most of the Earth's mantle. The research proposes that this is due to hot, water-rich fluids rising through an oxidized sediment layer, producing oxidized magmas that can ultimately erupt as lava from volcanoes.
Researchers have created a new method to generate strong fluid flows in tiny channels by heating a metal film with a laser beam, allowing for the separation and transport of nano-objects. This innovation has potential for lab-on-a-chip applications and could lead to advancements in nanoscale manufacturing and sensor technologies.
A study found that thawing permafrost in the Arctic releases large amounts of previously unaccounted-for carbon dioxide, amplifying global warming. The research team determined that up to 80% of this CO2 comes from ancient organic matter and 18% from inorganic sources.
Researchers have uncovered the truth behind the missing volatiles in meteorites, revealing a massive shockwave phenomenon that stripped elements from planetary building blocks. This finding has significant implications for our understanding of Earth's geochemical evolution and the Solar System's youth.
A University of Liverpool study found that meteorite impacts are determined by the minerology of the rocks hit, not the size of the impact. The study analyzed 44 impacts and found that those hitting rocks rich in potassium feldspar always correspond with mass extinction episodes.
Researchers have identified a quantum phase transition in ferropericlase, a mineral abundant in the lower mantle. The study, published in Nature Communications, confirms earlier predictions and suggests this phenomenon may increase tectonic events like earthquakes and volcanic eruptions.
A team of researchers has demonstrated how a detailed Life Cycle Assessment (LCA) can mitigate against negative environmental impacts in metal mining explorations. The new approach helps identify potential 'hot-spots' before extraction operations begin, allowing geologists to select targets with lower environmental impacts.
Researchers have determined the crustal thickness of Mars for the first time, with values ranging from 20 to 39 kilometers. This independent measurement allows for a precise map of the planet's crust across its entire surface.
Astronomer Alicia Rutledge has been awarded a $200,000 NASA Planetary Science Early Career Award to support the development of a field-portable laboratory for her research on cold-climate alteration processes. The award will enable her to conduct analog fieldwork and train next-generation scientists in planetary analog science.
Researchers have discovered a new method to track oxygen levels in the ancient oceans by analyzing tungsten isotopes. This breakthrough may provide valuable insights into the evolution of life on Earth and its ability to thrive under various environmental conditions.
Microbial populations in the deep subsurface are driven by host rock mineral composition, forming 'hotspots' of life. The study found that iron-rich minerals are preferred colonization sites for biofilms.
Researchers used lab tools to mimic extreme conditions, redefining the conditions under which carbonates can exist in the Earth's lower mantle. The study expands our understanding of the deep carbon cycle and the Earth's evolution.
Dr. Nathalie Cabrol proposes that modern life on Mars could be more widespread and accessible than previously believed, and that understanding patterns resulting from extreme environmental interactions is key to finding life. She suggests taking the approach of Mars as a biosphere to find signs of microbial habitability.
A research team has detected organic molecules and gases in 3.5 billion-year-old rocks, dating back to a time when early life developed on Earth. The findings suggest that these ancient rocks may have played a crucial role in the emergence of life on our planet.
Scientists have discovered that the high silica content in ancient rocks formed in the Earth's mantle is linked to a significant change in the planet's interior around 2.5 billion years ago. This boundary may have been caused by changes in the mantle's flow, leading to the loss of extremely high temperatures.
Researchers from HKU have discovered evidence of a reduced atmosphere on ancient Mars, dating back 3.5 billion years. The team used infrared remote sensing and spectroscopy to analyze mineralogy and geochemistry of ancient rocks, revealing weathered conditions indicative of a reducing environment.
Phosphorus-containing minerals from wind-blown dust fuel algal blooms on the Greenland Ice Sheet, darkening the surface and contributing to increased melting. The blooms, particularly in the Dark Zone, have significant implications for future ice sheet melting and sea level rise.
Researchers from Washington University in St. Louis have discovered that Kamchatka's Shiveluch volcano contains around 10%-14% water by weight, a significantly higher amount than most volcanoes. This finding is significant as it could provide insights into the global water cycle and the plumbing systems of other volcanoes.
Researchers have found that tiny diamonds can form in the presence of small electric fields, which play a central role in their creation. The experiments conducted by the Russian research team showed that applying less than one volt triggers a chemical transformation process, resulting in pure carbon in the form of diamond.
A study of Mytilus californianus shells reveals a shift in mineralogical composition over the past 60 years, from aragonite to calcite. Ocean acidification is likely responsible for this change, indicating potential impacts on marine ecosystems.
Researchers at Trinity College Dublin have identified a new mechanism for the formation of bastnèsite, a rare earth-bearing mineral essential for low-carbon energy generation and smart devices. The discovery has important economic implications due to the high demand for rare earth elements and their limited availability.
Researchers at St Petersburg State University have discovered a new mineral called petrovite with unique properties that make it promising for use in sodium ion batteries. The mineral's structural type is suitable for ionic conductivity, which could lead to the development of more efficient cathode materials.
Researchers used PAHs to monitor pollution and track down its sources in various ecosystems, including soils, plants, and water. The team identified key factors that impact PAHs accumulation, providing a new tool for environmental monitoring and pollution analysis.
Researchers found high concentrations of hematite at lunar high latitudes, strongly correlated with water content. The presence of hematite suggests that Earth's atmospheric oxygen may have oxidized the mineral over billions of years.