Asteroid Ryugu: A Treasure Trove of Life’s Essential Building Blocks

Hayabusa2 spacecraft captures images of the Ryugu asteroid and returns rock samples to Earth.

Ryugu: An asteroid that occasionally approaches Earth.

Credit: JAXA

Recent discoveries from samples collected from the asteroid Ryugu indicate that all five key components of DNA and RNA have been identified. This finding substantiates the theory that asteroids could have played a crucial role in delivering the fundamental building blocks of life to Earth billions of years ago.

In 2018, Japan’s Hayabusa2 spacecraft successfully visited Ryugu, employing two projectiles—one large and one small—to gather samples from the asteroid’s surface. After returning to Earth with these samples in 2020, scientific analysis has been ongoing.

Dr. Yasuhiro Ohba and a team of researchers from Hokkaido University analyzed two distinct samples from Ryugu: surface material and subsurface material obtained from the excavation caused by the projectile. The findings revealed all five major nucleobases, which are essential components that pair with sugars and phosphates to create nucleic acids, including DNA and RNA.

This isn’t the first instance of nucleobases being detected in asteroid samples; they have also been found in meteorities and samples from the asteroid Bennu. However, researchers observed variability in the abundance of nucleobases across different samples, pointing toward the potential to trace asteroids and meteorites back to their original celestial bodies, thus unraveling their evolutionary history.

The detection of nucleobases in samples from Ryugu and other asteroids highlights their potential significance in the history of life on Earth. “Their presence in Ryugu reinforces their prevalence throughout the solar system,” states Ohba. If these asteroids are indeed abundant in the precursors of DNA, they may have been instrumental in the emergence of life on our planet.

Furthermore, Ryugu and similar asteroids might harbor even more complex organic molecules, including nucleic acids. “Complex organic compounds like DNA and RNA are likely to form in asteroids,” notes Ohba, underscoring their critical role in the origin of life on Earth.

Topics:

  • Asteroid/
  • Extraterrestrial Life

Source: www.newscientist.com

Treasure Hunter Claims Recovery of $1 Million in Coins from Spanish Shipwreck off Florida Coast

Over 1,000 gold and silver coins, valued at roughly $1 million, have been retrieved from an 18th-century shipwreck located off the coast of Florida, as reported by the Shipwreck Salvage Company.

The company, 1715 Fleet Queens Jewels, LLC, stated in a news release that it recovered the coins in July from the renowned Treasure Coast region in southeastern Florida.

This discovery is part of an estimated $400 million worth of gold, silver, and gems that were lost by the Spanish fleet during the hurricane of 1715.

“The find represents more than just treasure; it tells a story,” said Sal Guttuso, the company’s operations director, in a statement. “Every coin connects us to the lives and work of those who navigated the seas during the Spanish Empire’s Golden Age.”

Over 1,000 silver coins have been discovered from a shipwreck site in Vero Beach, Florida.
1715 Fleet – Queen’s Jewels, LLC

“Finding over 1,000 coins in one excavation is indeed rare and remarkable,” he noted.

The prized assets of the 1715 fleet included coins from Spanish colonies in Mexico, Peru, and Bolivia. Many of these coins still exhibit clear dates and mint marks, making them significant to historians and collectors alike.

“The condition of these coins indicates they likely originated from a single chest or a portion of the ship that dispersed when the hurricane struck,” the news release clarified.

During a call on Thursday, Guttuso mentioned that he discovered coins concentrated in various areas beneath the sand, indicating they were likely housed in some kind of container.

“I believe they were probably stored in wooden boxes,” he theorized.

He also revealed that he found a Royal Lead Seal inscribed with the impression of King Philip II of Spain, who reigned during the mid- to late-1500s.

“We can reasonably speculate that this lead seal may have belonged to a prominent family,” he noted. “It likely associated with important documents that may have granted ownership of land or rights.”

Fragments and gems from a golden chain were also retrieved.
1715 Fleet – Queen Jewels, LLC
Gold artifacts were also found in Vero Beach, Florida.
1715 Fleet – Queen Jewels, LLC

The Queen’s Jewels of the 1715 Fleet claims exclusive salvage rights to the wreck of the Treasure Fleet but stated that the recovered coins will undergo meticulous conservation before being publicly displayed, with plans for exhibition at a local museum.

“Each discovery contributes to piecing together the narratives of those connected to the 1715 fleet,” Guttuso remarked. “We are dedicated to preserving and researching these artifacts, enabling future generations to recognize their historical importance.”

Requests for comments on the findings were not immediately returned by the US District Court of Florida or by Florida Governor Ron DeSantis’s office.

Source: www.nbcnews.com

Toxic Pits: Hidden Treasure Troves for Rare Earth Elements

A tale is shared about miners who discovered copper cans in early mining-era dumps. According to them, wastewater from copper mining flowed across his land, transforming steel cans into copper.

The tale may not be entirely true, but the process is factual and is known as cementation. Montana Resource, which succeeded the Anaconda Copper Company, still employs this alchemical method in the operations at the Continental Pitmine in Butte, Montana.

Adjacent to the mine lies the Berkeley Pit, filled with 50 billion gallons of highly acidic and toxic liquid. Montana Resource channels this liquid from the pits to cascade down iron piles, converting iron into copper for production.

While there have long been methods for extracting metals from water, recent years have ushered in a global rush for metals—vital for manufacturing and technological advancements—leading to a new wave of extraction methods and processes.

Researchers are currently focusing on mineral-rich sources like wastewater, including saline water from desalination plants, oil and gas fracking water, and mining wastewater. Researchers at Oregon State University estimate that the saline water from desalination plants alone contains approximately $2.2 trillion worth of metals.

“Water is a mineral reservoir of the 21st century,” stated Peter S. Fisuke, director of the National Water Innovation Alliance in California at the Department of Energy’s Lawrence Berkeley National Laboratory. “Today’s technology allows us to gather wastewater and extract valuable resources.”

There is extensive research dedicated to recovering rare earth elements—metallic elements sought after due to their increasing demand—from waste. For instance, researchers at Indiana Geological Water Survey at Indiana University are Mining rare earths in coal waste which includes fly ash and coal tails. Additionally, researchers at the University of Texas Austin have created membranes that imitate nature for Separating rare earths from waste.

Utilizing mining wastewater is not only quicker and more economical than establishing a new mine, but it also generates lesser environmental impact.

The vast, contaminated reservoirs in the pit near Butte contain two light rare earth elements (REEs): neodymium and praseodymium. These are crucial for creating small yet powerful magnets, medical technologies, and enhancing defense applications like precision-guided missiles and electric vehicles. Notably, an F-35 Fighter Jet uses around 900 pounds of rare earth metals.

“We’re transforming significant liabilities into assets that contribute to national defense,” remarked Mark Thompson, vice president of environmental affairs at Montana Resources. “There’s a lot of complex metallurgy at play here—the real cutting-edge science.”

This is a crucial moment for exploring domestic rare earth production. The U.S. currently lags behind China, and President Trump’s trade tensions have raised concerns that China may tighten its rare earth mineral exports in response to U.S. tariffs. Experts in mineral security at the Center for Strategic and International Research warn that this gap could enable China to accelerate its defense advancements more swiftly than the U.S.

The Trump administration is particularly fixated on Greenland and Ukraine due to their valuable rare earth deposits.

Trump has recently authorized the government to commence mining on much of the seabed, including areas in international waters, to tap into mineral wealth.

There are 17 distinct types of rare earth metals identified in the Berkeley Pit. While not rare in abundance, they are often deemed scarce due to their dispersion in small quantities.

Rare earths are divided into two categories: heavy and light. Heavy rare earths, including dysprosium, terbium, and yttrium, tend to have larger atomic masses, making them more scarce and thus typically traded in smaller quantities, leading to shortages. In contrast, light rare earths are characterized by a lower atomic mass.

Acid mine drainage is a hazardous pollutant created when sulfur-containing pyrite within rocks interacts with oxygen and water during mining. This process results in the formation of sulfuric acid, which poisons waterways. This environmental issue affects thousands of abandoned mines, contaminating 12,000 miles of streams across the nation.

However, acids facilitate the dissolution of zinc, copper, rare earths, and other minerals from rock formations, presenting an opportunity for extraction techniques that were not previously available.

Paul Ziemkievich, director of the Water Institute at West Virginia University, has been researching Butte’s pit water for 25 years. Alongside a team from Virginia Tech and the chemical engineering firm L3 process development, they developed a method to extract crucial metals from acid mine drainage originating from West Virginia coal mines, the same approach utilized in Butte. Large, densely woven plastic bags filled with sludge from the water treatment plant are employed, allowing water to seep through slowly and yielding about 1-2% rare earth preconcentrate, which requires further refining through chemical processes. The final patented step involves a solvent extraction method that results in pure rare earth elements.

“One of the remarkable aspects of acid mine drainage is that our concentrations are particularly rich in heavy rare earths,” explained Dr. Ziemkiewicz. “Light rare earths carry a lesser value.”

The Butte project is awaiting news on a $75 million grant from the Department of Defense, which is critical for enhancing rare earth enrichment and commencing full-scale production.

Zinc is also abundant in the acid mine drainage mixture and serves as an essential financial asset for the process as it commands a higher market price. Nickel and cobalt are also extracted.

Demand for rare earth elements is high; however, China dominates production, manipulating prices to maintain low costs and stifle competition. This is why the Department of Defense funds various projects focused on rare earth elements and other metals. The U.S. operates only a single rare earth mine in Mountain Pass, California, which produces roughly 15% of the global supply of rare earths.

The Berkeley Pit has posed a chronic problem since 1982, when Anaconda copper companies ceased their open-pit mining operations and halted water pumping, causing it to become filled with water. The acidity levels from the mine’s drainage have proven dangerous; in 2016, thousands of snow geese that landed in the pit quickly succumbed to poisoning, with around 3,000 birds reported dead.

The Atlantic Richfield Company and Montana Resources play crucial roles in permanently treating pit water to avert pollutioning the surrounding groundwater (Montana Resources operates the continental pit adjacent to the Berkeley Pit). The Clean Water Act mandates that companies manage acid mine drainage, and enhancing treatment capabilities at the local horseshoe bend plant is more cost-effective than developing a new facility, which may also offset treatment costs while boosting profits.

Numerous research initiatives have been launched to extract suspended metals from the water. Thompson displayed a map illustrating where radiation was emitted from Butte and where water samples have been dispatched to research facilities nationwide. However, the ongoing metal production process stands as the first to demonstrate profitability.

The mineral wealth present in this region has been recognized for many years; however, extracting it has proven challenging until Dr. Ziemkiewicz’s team innovated new methods. They generate rare earths from two coal mines in West Virginia, where acid mine drainage presents ongoing issues. Each of these mines yields about 4 tons of rare earths annually.

On the other hand, the Berkeley Pit is projected to produce 40 tons annually, bolstered by significantly higher concentrations of rare earths in solution and substantial water content. Dr. Ziemkiewicz believes that this method, when applied to other mines, could potentially satisfy nearly all domestic rare earth requirements for defense-related uses.

However, certain forecasts project that demand for rare earths may surge by as much as 600% in the next few decades.

Lawrence Berkeley laboratories are investigating technologies related to water filtration, particularly experimental approaches to improve membranes, as part of their overarching efforts to purify water, recover significant minerals, and produce necessary minerals. They operate a particle accelerator known as an advanced light source, which generates bright X-ray light that enables scientists to examine various materials at an atomic scale.

The lab has collaborated with external researchers to develop a new generation of filters referred to as nanosponges, designed to capture specific target molecules like lithium.

“It’s akin to an atom catcher’s mitt,” explained Adam Uliana, CEO of Chemfinity, a Brooklyn company exploring the use of nanosponges to purify a variety of waste. “It only captures one type of metal.”

In addition to rare earths, lithium, cobalt, and magnesium have gained significant attention from researchers.

Ion exchange, a well-established technology for extracting metals from water and purifying contaminants, is also gaining interest. Lilac Solutions, a startup based in Oakland, California, has developed specialized resin beads to extract lithium from brine via ion exchange, with plans for their first production facility in Great Salt Lake, Utah.

The company’s technology involves pumping brine through an ion exchange filter to extract minerals, returning water to its source with minimal environmental disruption. If this approach proves viable on a larger scale, it could revolutionize lithium extraction, significantly decreasing the necessity for underground mines and open-pit operations.

Maglathea Metal is an Auckland-based startup that produces magnesium ingots from the saline effluent generated by desalinating seawater. The company processes the brine, which consists of magnesium chloride salts, using a current powered by renewable energy to heat the solution, resulting in the separation of salt from molten magnesium.

CEO Alex Grant noted that the process is exceptionally clean, although it has yet to be applied to magnesium production. Much of the company’s work is funded by the Department of Defense.

With China accounting for 90% of global magnesium production, the current smelting process, known as the Pidgeon process, is highly polluting and carbon-intensive, involving heating to around 2,000 degrees using coal-fired kilns. Dr. Fisuke anticipates further innovations on the horizon.

“Three converging factors are at play,” he stated. “The value of these critical materials is climbing, the expenses associated with traditional mining and extraction are escalating, and reliance on international suppliers, particularly from Russia and China, is diminishing.”

Source: www.nytimes.com

Rediscovering Thetford Treasure: Archaeologists Explore 1,500-Year-Old Gold Jewelry and Silver Spoons

The treasure jewels discovered in Tetford Forest, East Anglia, indicate that Tetford maintained pagan practices until the 5th century A.D.



A ring from the Sitford storage on display at the British Museum. Image credit: Geni/CC by-sa 4.0.

The Thetford treasure was unearthed in 1979 by a metal detectorist trespassing at a construction site on Fison’s Way, Gallows Hill, Thetford.

This treasure comprised 81 items, including 22 gold rings, various gold gems, and 36 silver spoons or strainers.

Several gems were found alongside the shalebox, with additional objects nearby.

The retrieved items included coins, presenting researchers with dating challenges.

The collection is now part of the British Museum and is currently on display.

Professor Ellen Swift, an archaeologist from the University of Kent, remarked:

“The extensive evidence uncovered at this site substantiates the religious context previously indicated by inscriptions found among the spoons in the reservoir, suggesting that the dating of the Thetford reservoir extends into the fifth century.”

“The economic significance of the site—evidenced by the value and variety of its contents—indicates that it likely held considerable power and influence in the area.”

This revised chronology is bolstered by a thorough comparison of multiple artifacts (both spoons and jewelry), alongside discoveries of contextual dates from Continental Europe and objects from the 5th-century Hoxne Reservoir housed in the British Museum.

Professor Swift also found that England was less isolated than previously thought, and the treasured items were influenced by the Roman Empire.

“The Sitford gems display remarkable stylistic diversity, hinting at various artisans producing works from different regions,” Professor Swift explained.

“Some of the latest rings in the collection may have originated from Northern Italy or nearby regions, including necklaces adorned with conical beads from Balkan tribes in Europe.”

“Most of the jewelry reflects a ‘Rome of the Mediterranean’ aesthetic, suggesting a shared cultural heritage among elite circles across a broad geographic area.”

This research was published in the Journal of Roman Archaeology.

____

Ellen Swift. 2024. Rethinking the dates and interpretations of Thetford treasures: the fifth c. A storage of gold jewels and silver spoons. Journal of Roman Archaeology 37(2): 409-448; doi: 10.1017/s104759424000278

Source: www.sci.news

Ancient silver coins dating back 1,000 years discovered in Britain’s treasure trove

An archaeologist from Oxford Cotswold Archeology (OCA) has made an exciting discovery of 321 11th-century AD silver coins (319 full pennies and 2 cut halfpence) in mint condition near the site of a future nuclear power station on the Suffolk coast. This finding sheds light on the social and political unrest of the 11th century and suggests that the change of government following the coronation of Edward the Confessor in 1042 caused significant turmoil among the population. This collection may have belonged to a local influential figure who felt threatened by the political changes and chose to bury his wealth as a precaution.

A treasure trove of 1,000-year-old silver coins. Image credit: Oxford Cotswold Archaeology.

The newly discovered cache of coins was carefully wrapped in cloth and lead.

The coins in the hoard were issued during the reigns of Harold I “Rabbit’s Foot” (1036-1040), Harthacnut (1040-2), and Edward the Confessor (1042-1066).

Most of the coins date back to the reign of Harold I, with Harthacnut issuing significantly fewer, and only 24 issued by Edward the Confessor.

While the majority of coins were minted in London, some were also minted in Thetford, Norwich, Ipswich, Lincoln, and Stamford.

A few coins were issued by smaller mints such as Langport and Uxbridge in southwest England, making them extremely rare.

“This hoard of coins offers a valuable glimpse into the historical context of that era, indicating that Edward the Confessor’s ascension to the throne was a time of uncertainty and societal unrest. This further supports the idea that it was a period marked by apprehensions,” said Alexander, a coin expert from OCA.

“The analysis of this coin hoard was a collaborative effort involving experts in numismatics, finds, conservation, and project partners.”

“It is a privilege to contribute to bringing this story to life.”

Despite representing considerable wealth for the time, these coins likely belonged to individuals of moderate status rather than high-ranking individuals.

They were probably a savings pot of a local influencer and were roughly equivalent in value to a small herd of cattle at that time.

“The hoard was affectionately named Masu for obvious reasons, so discovering it was truly an honor,” said OCA archaeologist Andrew Pegg.

“When I unearthed it, I saw the edge of a coin peeking out, and I was amazed!”

“It’s an impeccable archaeological time capsule,” he added.

“The insights we’re gaining from it are remarkable, and I am proud to contribute to the history of my corner of Suffolk.”

The mid-11th century in England was a period of uncertainty and shifting loyalties.

Edward the Confessor’s coronation in 1042 followed over 25 years of rule by Danish kings Canute, Harold, and Harthacnut. This event reinstated the House of Wessex on the English throne.

The change in leadership likely sparked uncertainty and apprehension among the populace.

Specifically, some affluent individuals connected to the previous regime were either exiled or had their assets seized after Edward’s coronation.

The hoard’s owner may have buried his wealth in fear of political changes, hoping to retrieve it later as a safety net.

“We may never fully understand why this treasure was left undiscovered,” concluded the archaeologists.

“The discovery of an 11th-century coin hoard is truly extraordinary,” said Damien Leydon, Site Delivery Director at Sizewell C.

Source: www.sci.news