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The Sun, Moon, and Earth align on August 12, 2026, to produce a total solar eclipse. When this celestial event last occurred, on April 8, 2024, the path of totality stretched across North America, giving millions the chance to glimpse the Sun’s corona. In 2026, the viewing locales are more limited; only a handful of land areas in the Northern Hemisphere, including parts of Iceland and Spain, fall within the path of totality.
On August 12, the Moon’s shadow will first cross over the Arctic Circle from northern Russia and then track along the eastern side of Greenland. At about 5:45 p.m. local time in Iceland (17:45 Universal Time), the country’s western fringes—including the Snæfellsnes peninsula, shown in the Landsat image above—will begin to experience totality. The greatest eclipse will occur near this sparsely populated peninsula when the Moon appears the largest and covers more of the Sun.

The Snæfellsjökull volcano on the western end of the peninsula is covered in ice and last erupted about 1,800 years ago. It is the highlight of a national park of the same name, where people are expected to visit to view the eclipse. The stratovolcano even has a literary claim to fame: in Jules Verne’s A Journey to the Center of the Earth, characters venture underground through its crater, later emerging in an eruption of Stromboli, in Italy. In 2025, a broader area of the peninsula was designated a UNESCO biosphere reserve, containing over 70 percent of Iceland’s flora and an agglomeration of volcanic landscapes, wetlands, and grasslands.
From Iceland, the eclipse shadow, or umbra, progresses across the North Atlantic and reaches northern Spain shortly before sunset. It runs east-southeast across the country, much like the Ebro River (Río Ebro), seen in the Landsat image below.
The upper Ebro emerges from rugged terrain in Parque Natural de Montes Obarenes-San Zadornil, where it carves canyons and gorges through the eastern foothills of the Cantabrian Mountains. It then meanders through La Rioja, a region known for its vineyards. About 400 kilometers (250 miles) away, the river reaches a delta on the Mediterranean coast between Barcelona and Valencia.
Based on satellite measurements of cloud cover in August over several decades, viewers in Spain have a higher likelihood than those in Iceland of getting a clear look at the eclipse. And despite limited viewing opportunities in the path of totality, the rest of Europe, parts of Africa, Canada, and the northern and northeastern U.S. will experience a partial eclipse.
NASA Earth Observatory images and map by Michala Garrison, using Landsat data from the U.S. Geological Survey, base imagery from Blue Marble: Next Generation and Black Marble, and eclipse path data from Xavier Jubier. Story by Lindsey Doermann.
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2026-08-11 21:04
6 min read
This article is for students grades 5-8.
The Nancy Grace Roman Space Telescope is NASA’s newest astrophysics observatory. The telescope will scan large sections of space. Roman will help astronomers answer questions about dark energy, dark matter, exoplanets, and more.
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Words to Know
Astrophysics: a branch of space science that applies physics and mathematics to study the universe.
Lagrange point: a position in space where the gravitational forces of a two-body system, such as the Sun and Earth, are balanced. This point creates an “orbital parking spot” where minimal fuel is needed to maintain a spacecraft’s position.
Infrared light: light that is completely invisible to the human eye but can be felt as heat. It’s the area on the electromagnetic spectrum where wavelengths are longer than visible red light, but shorter than microwaves.
Dark energy: the mysterious force that is causing the universe to expand at an accelerated rate.
Exoplanet: a planet outside of our solar system.
Dark matter: the mysterious gravitational “glue” that holds cosmic structures together.
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The Nancy Grace Roman Space Telescope is scheduled to launch Aug. 30, 2026. It will launch aboard a SpaceX Falcon Heavy rocket. Liftoff will take place from Launch Complex 39A at NASA’s Kennedy Space Center in Florida.
The Nancy Grace Roman Space Telescope will orbit about 930,000 miles (1.5 million kilometers) away from Earth. It will orbit around a special place in space called the second Sun-Earth Lagrange point, or L2. This gravitational sweet spot is perfect for unobstructed views of the universe.
The Nancy Grace Roman Space Telescope will peer through dust and across vast stretches of space using infrared light. Roman’s primary mirror is 7.9 feet (2.4 meters) across. The large surface of the telescope mirror gathers lots of light. More light equals finer details.
The primary mirror will send light to Roman’s two science instruments: the Wide Field Instrument and the Coronagraph Instrument.
The Wide Field Instrument is a 300-megapixel infrared camera. It allows scientists to look very far back in time because the light captured by the camera has been traveling for billions of years before reaching the instrument. Seeing the universe in its early stages will help unravel how it has expanded throughout its history. This will give scientists hints about how the universe may continue to evolve.
The Coronagraph Instrument uses technology that blocks the glare from a star. This lets astronomers see planets in orbit around it. This instrument is the most powerful coronagraph ever flown in space. It will allow astronomers to see planets that are almost a billion times fainter than their host star.
Scientists using the Nancy Grace Roman Space Telescope will focus on three main topic areas: dark energy, exoplanets, and dark matter.
Dark energy is a mysterious part of the universe. Scientists aren’t sure what it is, but it makes up about 68% of the universe’s total contents. It is believed to be responsible for the accelerating rate at which our universe is expanding. But recent observations seem to show that the pressure from dark energy is shifting over time. Scientists hope to use the Roman Space Telescope to help solve the mystery of dark energy’s true nature.
Exoplanets are planets outside of our solar system. Scientists have discovered more than 6,000 exoplanets. But they believe that billions could exist. Most of the exoplanets detected so far are wildly different than the planets in our solar system. Scientists expect Roman to find more unusual exoplanets. It will also allow astronomers to find planets in the habitable zone of their stars. This will be key to finding planets similar to Earth.
Dark matter is the invisible glue that holds the universe together. Scientists aren’t sure what dark matter is made of. Roman will allow scientists to peer back in time to trace how galaxies and galaxy clusters formed. If dark matter consists of heavy, sluggish particles, it would clump together readily and Roman should see galaxy formation early in cosmic history. If dark matter is made up of lighter, faster-moving particles, it should take longer to settle into clumps and for large-scale structures to develop. If astronomers can narrow down the candidates for dark matter particles, we’ll be one step closer to finally detecting them directly in experiments on Earth.
Nancy Grace Roman was NASA’s first chief astronomer and the first female executive at the agency. Roman championed the making of the first space-based telescope — the Hubble Space Telescope. She was involved in every crucial decision about the telescope from its funding to where it was built to the details of its instruments. Her vital role in making the project a reality led her to be known as “the mother of the Hubble Space Telescope.”
Roman was born May 16, 1925, in Nashville, Tennessee. She died Dec. 25, 2018.
More than a thousand technicians and engineers assembled Roman from millions of individual components. Here are a few examples of the careers that shaped NASA’s newest space telescope:
Instrument technician: These experts install, calibrate, and maintain sensors and control systems. They troubleshoot issues that might come up with delicate systems and equipment. This career path often starts with an apprenticeship or hands-on training alongside experienced technicians. An associate’s degree is often required.
Mechanical engineer: This branch of engineering focuses on complex machines and engines. Mechanical engineers design, build, test, and improve mechanical systems. They play an essential role in making a complex observatory like the Roman Space Telescope a reality. A career in engineering demands a strong understanding of math and complex problem-solving and usually requires an advanced college degree.
Astrophysicist: These scientists study the physics of the universe. They are interested in learning how the universe began, how it is evolving, and how it works. Becoming an astrophysicist requires advanced college degrees.
NASA also needs people who work in photography, management, social media, videography, and much more. Learn about some of the people who have made the Roman mission possible here!
Mission Website: Nancy Grace Roman Space Telescope
2026-08-11 19:41

NASA has declared “wrenches down” on the first completed payload designed for Artemis astronauts to deploy on the Moon’s surface. Engineers working on NASA’s Lunar Environment Monitoring Station, or LEMS, have completed hardware development and testing and the payload is ready for its permanent home near the lunar South Pole. With the hardware complete, LEMS is ready to support one of the Artemis program’s core goals: enabling sustained lunar science and exploration.
The LEMS instrument package contains two highly sensitive seismometers that will monitor ground vibrations from moonquakes and meteorite impacts, providing scientists with insights into the Moon’s interior and the seismic hazards astronauts might encounter at the surface. Its modular design allows the system to be adapted or expanded to host new instruments in the future, creating a reusable platform that can evolve as scientific priorities grow.
The payload will remain in a clean room at NASA’s Goddard Space Flight Center in Greenbelt, Maryland, where it was built, until it is assigned to an Artemis mission for deployment to the lunar surface.
“The completion of the LEMS scientific instrument is a major step in a new era of lunar surface science. Innovative science experiments will uncover, measure, and reveal the Moon’s secrets while astronauts open new frontiers for discovery,” said Joel Kearns, deputy associate administrator for exploration, Science Mission Directorate, NASA Headquarters in Washington. “And, behind the scenes, countless teams across NASA and our partners are pushing the boundaries of what surface instruments can do, building the tools that will make future exploration possible and safer.”

The LEMS payload builds on a legacy of lunar seismic tracking. Apollo astronauts deployed a network of seismometers on the Moon’s nearside equatorial region between 1969 and 1972. Those instruments operated until 1977, recording about 13,000 moonquakes and other ground vibrations that helped scientists begin to understand the composition of the Moon’s interior. For decades, researchers have hoped to spread more seismometers, updated with new technologies, across the lunar surface.
Now, LEMS will carry the first seismometers to be deployed by future astronauts to listen for faint ground vibrations, collecting new clues to the Moon’s internal structure and ongoing seismic activity. The sensors will be the most compact, sensitive, and energy-efficient seismometers ever built for planetary exploration.
LEMS itself is about the size of a small suitcase, weighing 11 pounds in the Moon’s low-gravity environment. It will carry not just these seismic sensors, but everything it needs to function independently of humans after deployment. LEMS is built to manage its own power production via a lightweight, flexible solar array that conforms to the shape of the LEMS unit. It also will manage its operational activities to ensure continuous data collection based on a preset plan, and monthly data transmission to Earth. The payload will do all this while maintaining a stable internal temperature throughout the massive day-to-night temperature swings of the South Pole region.

“When we conceived of LEMS, we weren’t just thinking about the next mission, we were thinking about the next generation of lunar exploration,” said Mehdi Benna, a University of Maryland Baltimore County scientist who leads LEMS from NASA Goddard. “Our vision was to create a scientific buoy for the Moon. Like an ocean buoy on Earth, LEMS is designed to be easy to build, adaptable to different scientific objectives, and capable of operating independently for years.”
Before any surface science could happen, Benna and his team had to ensure that LEMS could survive the trip to the Moon and the harsh environment of its surface. Over the past five months, LEMS and its components have been subjected to a demanding series of environmental and operational tests. Engineers verified LEMS can endure the violent shaking of launch, the journey to the lunar surface, and the Moon’s temperature and radiation environment. The team also showed that the instrument package’s mechanical and electrical design is safe for astronaut handling.
The LEMS payload was built to operate through the lunar night, which lasts two Earth weeks, without external power assistance or a heat source. Past lunar surface instruments relied on radioisotope heaters for warmth and power. But LEMS instead will withstand temperatures that dip to minus 400 degrees Fahrenheit in some areas by using advanced insulation materials, low-thermal-conductivity cables that minimize heat loss, and a thermal regulator that conducts heat away during the day to prevent overheating and helps retain heat at night.
These innovations reduce mass and power needs, setting the stage for lighter, energy-efficient instruments that can operate continuously at future Artemis landing sites and the NASA-led Moon Base.
The LEMS payload is led by University of Maryland Baltimore County and University of Maryland College Park. Technical implementation is led by NASA Goddard. The University of Arizona, in partnership with Silicon Audio, Inc., supplied LEMS’ two state-of-the-art seismometers. Morehead State University in Kentucky provided LEMS’ telecommunication system and will operate the instrument on the surface. Washington University in St. Louis will manage the instrument’s data processing and dissemination to the larger scientific community.
2026-08-11 17:02

Observing across the starry “plains” of space, NASA’s James Webb Space Telescope has taken new images of NGC 2392, nicknamed the Lion Nebula. The nebula’s “mane” is clear and detailed in this image released on Aug. 10, 2026, due to Webb’s high-resolution imaging.
See more images of the Lion Nebula from Webb.
Image: NASA, ESA, CSA, STScI; Image Processing: Alyssa Pagan (STScI)
2026-08-11 15:19

Like a collage made of layered sheets of colored cellophane, a vibrant new image layers observations of a famous star-forming nebula from NASA space telescopes. The resulting cosmic “craft” reveals new details about the star formation region known as 30 Doradus, or the Tarantula Nebula.
Located in the Large Magellanic Cloud, a small neighbor galaxy to the Milky Way about 160,000 light-years from Earth, the Tarantula has thousands of young stars embedded in a vibrant honeycomb-like structure of gas and dust.
Like a collage made of layered sheets of colored cellophane, a vibrant new image layers observations of a famous star-forming nebula from NASA space telescopes. The resulting cosmic “craft” reveals new details about the star formation region known as 30 Doradus, or the Tarantula Nebula.
Located in the Large Magellanic Cloud, a small neighbor galaxy to the Milky Way about 160,000 light-years from Earth, the Tarantula has thousands of young stars embedded in a vibrant honeycomb-like structure of gas and dust.
The new composite image contains X-rays from NASA’s Chandra X-ray Observatory, which has repeatedly observed the Tarantula Nebula over the course of its mission, in the layer that appears in blue. The X-ray data reveals gas blown away by winds from the surfaces of young, massive stars and heated to millions of degrees by shock waves, like sonic booms from supersonic jets.
The red represents infrared data from NASA’s James Webb Space Telescope showing thousands of young stars, plus swaths of cool dust that will provide the ingredients to form new stars and planets. Optical data in the green layer from NASA’s Hubble Space Telescope uncovers hydrogen gas that is warmer than seen with Webb, as well as some individual stars through the nebula.
The composite image shows the full Hubble and Webb images of this region, as well as a large section of the Chandra image, all recently published in a research paper in the Astrophysical Journal. In some regions the blue Chandra layer stands alone, and in others it combines with either the red Webb data or the green Hubble data. In the middle region all three images overlap to provide a holistic view in red, orange, yellow, green, and blue.
Previously, astronomers had studied the amount and the impact of energy produced by winds from young, massive stars in the Tarantula Nebula. Scientists expect that much of this energy should heat gas so that it produces X-rays. However, the research paper shows that there is much less X-ray-emitting gas in the nebula than expected. This led researchers to ask: Where has this energy gone and what tamed the Tarantula Nebula?
By studying the data from Chandra, Hubble, and Webb, combined with data from NASA’s retired Spitzer Space Telescope, the team concluded the Tarantula may be losing energy from several sources.
First, up to half of the hot gas is leaking through the shell walls of the gas and dust structures and escaping the nebula. Next, there is stirring and mixing between the cold gas near the shell walls and some of the hot gas, lowering the overall temperature of the gas. Finally, comparisons with computer simulations suggest the Tarantula may be losing energy through conduction. This involves direct physical contact between hot and cooler material, like with a frying pan on a burner, causing the hot and cooler material to equalize in temperature. In the case of the Tarantula Nebula, the hot gas would be conducting heat by being in direct contact with the cooler gas in the shells, especially in the densest regions. This scenario does not necessarily involve mixing the hot and cooler gas.
The combination of these three channels for losing large amounts of energy leads to this colorful and complex display revealed by NASA’s telescopes working together.
The paper describing these results was led by Jennifer Rodriguez of The Ohio State University in Columbus. Additional authors on the paper include Laura Lopez, Ohio State; Lachlan Lancaster, Columbia University in New York City; Anna Rosen, San Diego State University; Omnaraynai Nayak, Space Telescope Science Institute in Baltimore; Sebastian Lopez, Ohio State; Tyler Holland-Ashford, NASA’s Goddard Space Flight Center in Greenbelt, Maryland; and Trinity Webb, Ohio State.
NASA’s Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program. The Smithsonian Astrophysical Observatory’s Chandra X-ray Center controls science operations from Cambridge, Massachusetts, and flight operations from Burlington, Massachusetts.
To learn more about Chandra, visit:
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