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Businesses often row back on ethics when times get tough. Here's how technology can keep them on track
Five carmakers are involved in a case at the High Court in London over claims that they cheated on emissions tests. A decade ago, the "dieselgate" scandal broke, eventually forcing Volkswagen to pay billions of euros in fines and settlements. These carmakers (Mercedes, Ford, Peugeot/Citroën, Renault and Nissan) have all faced accusations that selling cars was more important to them than their environmental responsibilities. They all deny the allegations.

Back in 2015, all United Nations member states adopted 17 sustainable development goals (SDGs) as a global blueprint to end poverty and inequality, protect the planet and promote peace by 2030. Central to this agenda is the pledge to "leave no one behind", affirming that progress in any area matters only if it reaches the world's most vulnerable communities.

The allegations against the carmakers sit within this wider pattern. When firms treat a crisis—in this case, environmental regulations—as justification for bending the rules, sustainability stops being a real commitment and becomes a fair-weather promise.

The same logic can appear in geopolitics, but with far more devastating consequences. At the extreme end, conflict shows how quickly the SDG blueprint can unravel.

Source: Phys.org
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Two close-up views of Ganymede, the largest moon in our solar system, taken 25 years apart!

30 years ago on June 27, NASA's Galileo spacecraft performed humanity's first-ever flyby of Jupiter's icy moon Ganymede—revealing that it had a magnetic field. Galileo flew within 519 miles (835 km) of Ganymede.

Nearly 25 years later, in June 2021, Juno made the next closest approach to the surface of this fascinating moon reaching a distance of 645 miles (1,038 km), detecting salts and organic compounds in its icy crust.

1. Galileo's view, June 1996
2. Juno's view, June 2021

Source: @NASAhistory
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New Discovery Could Unlock Quantum Computers the Size of a Coin
For decades, magnons have shown enormous promise for quantum technologies, but one critical limitation has kept them from practical use: they disappear almost as soon as they form.

Now, an international team of physicists led by Andrii Chumak at the University of Vienna has increased magnon lifetimes by nearly two orders of magnitude, from just a few hundred nanoseconds to as long as 18 microseconds.

The researchers also discovered that this limit is set not by fundamental physics, but largely by material quality, pointing to a clear path toward even longer-lived magnons. The breakthrough could ultimately help enable highly compact quantum computers, potentially no larger than a 1-cent coin. The findings were published in Science Advances.

Why Magnons Matter
Magnons move through magnetic solids as small waves in magnetization, similar to ripples spreading across water after a stone is dropped into a pond. Unlike photons, which can move through empty space or optical fibers, magnons travel inside solid magnetic materials.

Their wavelengths can shrink to the nanometer scale, meaning magnonic circuits could, in principle, be built on chips no larger than those already used in today’s smartphones. Because a magnon is an excitation inside a solid, it also naturally interacts with many other fundamental quasiparticles, including phonons and photons. That makes magnons promising building blocks for hybrid quantum systems and quantum metrology.
Source: SciTechDaily
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Ultra-fast light-shaping technology could be 'game-changer' for future imaging
Scientists have developed a new type of "virtual" metasurface—capable of controlling light in ways traditional lenses and optics can't—which they say is superior to the current approach, which relies on ultrathin engineered materials. The Nottingham Trent University team says the work will help fully optimize metasurface potential for a range of real-world applications and paves the way for a move from physical to virtual platforms in nanotechnology.

Metasurfaces are many times thinner than a human hair and can bend and focus light, change its color and steer it in different directions, meaning they can replace bulky optical elements in small devices such as lenses, mirrors and filters.

While they are powerful, however, the materials and dimensions of physical metasurfaces are fixed—once built, they can't change their shape, which can limit how useful they are in real-world technologies.

The study, published in the journal Advanced Photonics Nexus, demonstrates the potential for virtual metasurfaces, which use emulated two-dimensional optical patterns on a flat surface rather than tiny physical particles.

The process uses a device called a spatial light modulator, which can control light pixel by pixel to change its shape and function faster than the blink of an eye.

Because the patterns are programmable and can change instantly, the metasurface can perform many different functions within the same device. This could include mixing colors, turning invisible infrared images visible, or acting like a lens to adjust focus.

The researchers argue that making the material "tunable" by using such synthesized metasurfaces is what is required to move metasurfaces out of laboratories and onto production lines for new technologies.

While the approach requires additional research and development, the team says it could benefit a range of technologies, spanning imaging and microscopy, quantum photonics, sensing, beam steering, semiconductor manufacturing, telecommunications and holography.

In the new study, the researchers demonstrate the technology's potential by using the approach to turn invisible infrared signals into visible pictures and adjust the images' focal lengths on demand. Conventional lenses and mirrors are unable to perform these two functions concurrently.

Source: Phys.org
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Natural hallucinogens may have evolved as ecological tools, not chemical accidents
Natural hallucinogens, such as psilocybin, mescaline, N,N-dimethyltryptamine (DMT) and related compounds, have generally received attention for their effects on human perception, emotion and cognition. Recently, interest in these compounds has expanded to include their potential roles in psychiatric treatment, neuroplasticity research and the study of consciousness.

Yet their ecological origins remain poorly understood. Why have unrelated plants, fungi and animals repeatedly evolved molecules capable of strongly modulating animal nervous systems?

Now, researchers led by Prof. Wang Xiaohui from the Changchun Institute of Applied Chemistry of the Chinese Academy of Sciences propose that natural hallucinogens may have primarily evolved as ecological tools that help organisms survive, defend themselves and interact with other species.

The research was discussed in a Perspective published in PNAS.

Chemical ecology offers a new frame
The study integrates chemical ecology, comparative genomics, biosynthesis, neuropharmacology and evolutionary biology to create an ecological and evolutionary framework for understanding psychoactive natural products.

The researchers argue that natural hallucinogens should be viewed as products of chemical ecology—the study of how organisms use chemicals to interact with one another and with their environment—and of convergent evolution, in which similar traits evolve independently in unrelated organisms because they face similar environmental challenges.

According to the study, these hallucinogenic compounds are not accidental "chemical anomalies." Rather, they may represent ecological tools shaped by interactions among producer organisms and their consumers, predators, competitors or symbiotic partners.

Source: Phys.org
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Scientists Turn Ordinary Sunlight Into UV Light in Major Energy Breakthrough
Imagine pouring two cups of warm water together and expecting to get one cup of boiling water. That is impossible in everyday life, but something similar can happen in the quantum world. There, two low-energy particles of light, known as photons, can combine their energy to create a single photon with much higher energy.

Researchers at Kyushu University have now developed a solid-state molecular material that can convert ordinary visible sunlight into ultraviolet (UV) light. The material achieved a conversion efficiency of 1.9% under natural outdoor sunlight. Their findings were published in Nature Communications on June 23.

Converting Visible Sunlight Into UV Light
Although most people try to avoid UV exposure during the summer, ultraviolet light plays an essential role in many technologies. It is used for air purification, curing resins in 3D printing, and hardening gels in dental fillings and nail products. Even so, UV light makes up only about 6% of the sunlight that reaches Earth’s surface, and only part of that small amount is useful for practical applications.

“What we do here is ‘add together’ the energy from two visible light photons to make one ultraviolet photon. It’s a fascinating process called photo upconversion,” explains Yoichi Sasaki, Associate Professor at Kyushu University’s Faculty of Engineering and the study’s corresponding author.

Source: SciTechDaily
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The 2 earthquakes that struck Venezuela are known as a 'doublet.' Here's how they happen
The two powerful earthquakes that struck Venezuela's northern coast, killing more than 180 people, were an event known as a "doublet."

Doublet earthquakes happen when a pair of similar-sized quakes hit close in location and time, according to the U.S. Geological Survey. On Wednesday evening, a 7.2 magnitude quake hit first, followed by a magnitude 7.5 just 39 seconds later.

The deadly one-two punch toppled buildings in Venezuela's capital, Caracas and beyond. Some 1,500 people were injured and thousands were reported missing. The coastal region of La Guaira, which is north of Caracas, experienced some of the heaviest damage and casualties, officials said.

How rare are doublets?
While not as common as a typical earthquake where a main shock is followed by much smaller aftershocks, doublets can happen anywhere in the world, Christine Goulet, director of the USGS earthquake science center in California, told The Associated Press.

Doublets indicate a complex fault structure, like the one in Venezuela. Known as the Bocono fault, it runs along the backbone of the Venezuelan Andes for about 300 miles (500 kilometers). A previous doublet—of magnitudes 6.2 and 6.3—struck an area west of Caracas in September 2025, killing at least one person and injuring more than 100 others. Most of the damage was reported in the states of Zulia and Lara.

Source: Phys.org
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World's largest particle smasher halts for upgrade to boost hunt for dark matter
The world's most powerful particle accelerator will shutter operations Monday for four years of renovations to dramatically boost its collision capacity and the potential for unlocking one of the greatest mysteries of the universe: dark matter.

The Large Hadron Collider (LHC)—a 27-kilometer (17-mile) proton-smashing circular tunnel at the heart of Europe's physics lab CERN near Geneva—has most famously been used to prove the existence of the Higgs boson, dubbed "the God particle."

In the tunnel, running about 100 meters (330 feet) below the French-Swiss border area, superconducting magnets and accelerating structures propel particles to extreme energies and then smash them together at phenomenal speeds.

But from Monday, activity will stop as the extraordinary device undergoes upgrades aimed at further increasing the precision and intensity of particle collisions.

Once completed, the enhanced particle smasher, bearing the new name High Luminosity LHC (HL-LHC), is scheduled to begin operations in June 2030 and to run for about a decade.

'Many discoveries' await
"This is a very important moment. From Monday, we will be entering a new phase," HL-LHC project chief Markus Zerlauth told reporters.

"We still have lots of physics questions without answers. There are still many discoveries to be made."

The goal is to increase the "luminosity"—that is, the total number of collisions produced over a given period—by a factor of 10 compared with the LHC.

Source: Phys.org
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⁣After 8 years travelling across the inner Solar System, BepiColombo has switched off its ion engines.
The ESA/JAXA mission is now entering its final approach to Mercury, with key arrival steps starting in September.

🔗 esa.int/Enabling_Suppo…

Source: @esa
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NASA Moon Base Could Become Earth’s First Defense Against Alien Microbes
A policy paper argues that NASA’s planned moon base should include a biocontainment facility to help protect Earth from potentially hazardous biological contaminants brought back from space.

“Humanity is entering a new era of space exploration, but our planetary protection strategies have not kept pace with the risks associated with returning extraterrestrial samples to Earth,” said paper coauthor Frederick I. Moxley, Director of Strategic Threat Analysis and Research Laboratories, an Idaho-based consultancy.

“The proposed facility would essentially act as a firewall between Earth and any potentially hazardous live organisms that could accompany returning future space missions,” said Moxley, whose coauthor is Anthony Ricciardi, a James McGill Professor of Biology and the Director of the Bieler School of Environment at McGill University.

Samples would stop on the moon
In their paper, published in Ambio, Moxley and Ricciardi argue that material gathered from the moon, Mars or farther destinations should not be sent straight to Earth. Instead, they say extraterrestrial samples should first go to a secure quarantine and research facility on the moon.

Moxley and Ricciardi recommend that all incoming space samples be handled only by advanced robotic systems inside the lunar facility. That approach would reduce the chances of human exposure or an accidental release.

Invasive species offer a warning
Although no extraterrestrial life has been confirmed, Moxley and Ricciardi warn that any unfamiliar form of life entering Earth’s biosphere could have unpredictable ecological effects. They point to Earth’s long history of invasive species as a cautionary example.

Source: SciTechDaily
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Ancient DNA Sheds Light on Final Chapter of Neanderthal Life in Northwestern Europe
Neanderthals lived in Europe and western Asia from at least around 430,000 years ago until around 40,000 years before present.

The high-quality nuclear genomes of four Neanderthals provided numerous insights into the diversity and population history of Neanderthals and their interactions with early modern humans.

The more recent Neanderthal from Croatia (45,000 years ago) showed higher genetic diversity and less evidence of recent inbreeding than do the older Neanderthals from Denisova and Chagyrskaya caves (120,000, approximately 110,000, and approximately 60,000 years ago) who lived in the easternmost part of the known Neanderthal range.
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“The late Neanderthals from northwestern Europe appear to have been part of a connected regional population, rather than small, isolated groups with frequent mating between close relatives.”

Although modern humans had arrived in the region by around 47,000 years ago, none of the Neanderthal genomes showed traces of recent human DNA.

“Our results add to a striking asymmetry,” Bossoms Mesa said.

“We repeatedly find Neanderthal ancestry in early modern humans, but so far, we have not found clear evidence of recent modern human ancestry in late Neanderthals.”

The scientists also tested the theory that Neanderthals were gradually weakened by accumulating genetic defects.

Comparing early and late Neanderthals, they found no meaningful increase in harmful mutations over time, undermining the notion that genetic deterioration drove their extinction.

What ultimately doomed the Neanderthals remains an open question.

Source: Sci.News
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Scientists Create AI Skin Patch That Acts Like an Instant Personal Doctor
Researchers at the University of Chicago Pritzker School of Molecular Engineering (UChicago PME) have created a skin-like computing patch that can process health data using artificial intelligence directly on the body. Unlike conventional wearable devices, the patch performs AI calculations in milliseconds without needing to send information over a wireless connection.

Most smartwatches can monitor metrics such as heart rate and movement, but the actual data analysis takes place on external servers. That delay can be problematic in situations where every millisecond matters, such as detecting ventricular fibrillation, a life-threatening heart rhythm disorder.

Developed and tested with researchers at Argonne National Laboratory, the new device was made possible by manufacturing techniques that allow organic electrochemical transistors to be printed onto flexible materials.

“The future that we’re trying to realize is to make wearable and implantable devices smarter,” said Sihong Wang, an associate professor of molecular engineering at UChicago PME and co-senior author of the new study, published in Nature Electronics. “It’s helping people have a personal, instantaneous doctor integrated into their devices.”

Stretchable Neuromorphic Computing for Human Tissues
Wang’s laboratory has spent years developing electronic components that can stretch and flex like human skin, with the goal of creating intelligent devices that can attach directly to biological tissues. Previous achievements included stretchable transistor arrays and a stretchable OLED display.

For this project, the researchers aimed to build a stretchable neuromorphic computing circuit, a large network of transistors capable of analyzing health information. Earlier studies had shown that the idea could work with a limited number of transistors, but scaling it to a practical system remained a challenge.

Source: SciTechDaily
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Scientists Challenge a Fundamental Assumption About Consciousness
What if consciousness has nothing to do with flesh and blood?

The possibility may sound like science fiction, but it is becoming an increasingly serious philosophical question as scientists search for alien life and artificial intelligence grows more sophisticated. A new analysis argues that consciousness may not be unique to Earth’s biology and could, in principle, emerge in life forms built from entirely different materials.

Eric Schwitzgebel, a distinguished professor of philosophy at the University of California, Riverside, and Jeremy Pober, a former UCR graduate student now a postdoctoral researcher at the University of Lisbon, contend that there is little reason to think conscious experience is tied exclusively to carbon-based life. Instead, they argue, consciousness could arise wherever evolution, or something like it, produces the right kind of complex system.

Rather than attempting to define consciousness itself, the researchers begin with the assumption that it is a real phenomenon. From there, they explore a deceptively simple question: Must consciousness depend on the biology found on Earth, or could it take forms unlike anything humanity has ever encountered?

Their paper arrives as debates over conscious artificial intelligence grow more urgent, inspiring both hopeful visions and alarming scenarios. Schwitzgebel and Pober address AI only briefly and do not offer a shared conclusion. In fact, their views differ. Still, their argument leaves room for the possibility that AI could be conscious someday, even if current systems may not be.

The central idea in the paper is “substrate flexibility.” A property is substrate flexible when it can be produced by more than one type of material. A cup, for example, can be made from glass, plastic or many other substances. A book can exist on paper or in digital form. Music can be stored on vinyl or compact discs.

Schwitzgebel and Pober argue that consciousness may work in a similar way.

“The universe may contain minds stranger than we can imagine,” Schwitzgebel said.

Source: SciTechDaily
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Uranus, Neptune May Be Magma Worlds, Not Ice Giants
Uranus and Neptune remain two of the most mysterious objects in the solar system, primarily because they’ve only been visited by NASA’s Voyager 2 spacecraft in 1986 and 1989, respectively. Their “ice giant” moniker comes from longstanding hypotheses that their interiors are comprised of an icy mantle beneath their hydrogen/helium atmospheres. While Jupiter and Saturn are also comprised primarily of hydrogen and helium, Uranus and Neptune are hypothesized to have a layered structure comprised of icy elements within their interiors.

Despite decades of models, studies, and hypotheses, the debate over the longtime “ice giant” nickname for Uranus and Neptune is heating up. This is because a recently submitted study to The Astrophysical Journal could show this nickname might not be as frozen solid as scientists have long believed. In either case, a team of researchers from the University of California, Los Angeles (UCLA) could cause longstanding scientific passions to melt away.

For the study, the researchers used a series of computer models to simulate and ascertain the interior compositions and processes of Uranus and Neptune. The primary motivation behind the study was to confirm or refute the longstanding models and hypotheses regarding the “ice giant” status of Uranus and Neptune. While long standing models have given both worlds a hydrogen/helium atmosphere covering a vast mantle of “ices” comprised of water, ammonia, and methane, and finally a rocky core, studies into both worlds’ magnetic fields and heat distribution have puzzled scientists.

The researchers note that not only could this study explain the interiors of Uranus and Neptune, but that they could be used as analogs for sub-Neptune exoplanets. They are the most common type of exoplanet in our galaxy and have radii between 1 to 4.5 of Earth. Due to a lack of similar planet in our solar system, the formation and evolution of these exoplanets remain a mystery.

In the end, this study determined that the interiors of Uranus and Neptune are potentially comprised of a magma ocean, as opposed to an icy composition. The planetary layers the study proposes include a hydrogen/helium atmosphere that transports heat to the upper atmosphere and radiates it to space. Below this layer is a boundary layer comprised of several elements, including hydrogen, helium, magnesium, silicon monoxide (SiO), and oxygen. Finally, the bottom layer is a magma ocean comprised of silicate, iron, and hydrogen.

Source: Universe Today
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Our brains aren't wired to handle this much bad news. But 'looking away is not the fix,' expert says.
During several recent conversations, people have told me that they've stopped checking their phones in the morning. Not because nothing was happening, but because everything was. They described the feeling as standing under a waterfall of perpetual bad news.

This experience is far from an isolated one. According to Reuters Institute's 2025 Digital News Report, 69% of Canadians at least occasionally avoid the news now.

Globally, 40% report they at least sometimes or often do the same, the highest figure ever recorded. People shared consistent reasons for this: the news put them in a bad mood, they felt overwhelmed and powerless to act.

As a researcher in developmental psychology, focusing on social development and psychological well-being, I argue that news fatigue is not laziness, weakness or a generational decline in civic interest. It's the predictable response of a human brain meeting an environment it was never designed to navigate.

Wired for bad news
Long before smartphones or even the printing press, our cognitive architecture was shaped by a single problem: stay alive long enough to reproduce. Our ancestors whose attention drifted past the rustle in the grass left fewer descendants than those who froze, looked and listened.

The brain that paid attention to threats was the brain that survived.

This is the foundation of what psychologists call the negativity bias, one of the most replicated findings in cognitive science. Across decades of research, the human mind has been shown to weigh negative information more heavily than positive, attend to it faster and remember it longer.

Source: Live Science
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Peptide alternative to antibiotics could combat antimicrobial resistance crisis
A University of Alberta research team has designed a promising alternative for treating antimicrobial-resistant infections, a pressing global health issue. In a paper recently published in Cell Biomaterials, the team describes preclinical testing results for its human-derived peptide treatment, D-GK17. The peptide is stable and nontoxic to humans and is synthesized to attack the surfaces of bacterial or fungal cells that create biofilms, a sticky matrix that is often impenetrable to antibiotic treatments.

"Antimicrobial resistance is the biggest pandemic threatening humanity, so we really need potent antibiotic alternatives to which bacteria are unable to develop resistance," says principal investigator Dr. Prasanna Neelakantan, associate professor in the Mike Petryk School of Dentistry and Alberta Dental Association & College Chair in Oral Health Research, who did the work with collaborators at the University of Hong Kong and the University of Pennsylvania.

"Our peptide shredded bacterial biofilms, which cause up to 75% of life-threatening infections," Neelakantan explains. "We used skin infection models to show how our antibiotic alternative not only rescues from devastating bacterial infections, but also reduces inflammation and promotes wound healing."

Antimicrobial resistance is estimated to have directly caused 1.27 million deaths and contributed to 4.95 million deaths in 2019, according to the World Health Organization.

The team's treatment is based on a human-produced host defense peptide that provides rapid, broad-spectrum protection against bacteria, viruses and fungi. Most such peptides are toxic in the high concentrations needed to eradicate biofilms, and more importantly, they are unstable in body fluids, so it has been hard to harness their power as drugs.

The team serendipitously discovered a small subunit of the human peptide LL-37 known as GK17 that is stable and nontoxic, first publishing its findings three years ago.

"It checked the box for killing bacteria and fungi. It checked the box for preventing the development of resistance. But one box that it did not check was whether it could eradicate biofilms, which would be critical. So, we made a mirror version of our peptide, hoping it would break down biofilms," Neelakantan says.

They tested it against the biofilms created by the so-called ESKAPE group of the world's most critical pathogens, and it worked.

Source: Phys.org
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Why does the Sun throw stuff at us?

The Sun’s surface is a churning soup of energetic electrons and ions called plasma.

The motion of those charged particles creates magnetic field loops that are larger than the Earth. These loops twist, turn, and trap plasma.

The featured time-lapse, taken over 2 hours on April 24th, 2026 by the Solar Dynamics Observatory, shows what happens when those magnetic fields become too stressed: they snap and expel billions of tons (trillions of kilograms) of plasma into space at millions of miles (or kilometers) per hour in what is called a coronal mass ejection (CME).

The Sun releases a few CMEs each day when it is at the peak of its activity cycle, which passed in 2025. Some of these eruptions hit Earth and can disrupt power grids, disable satellites, and endanger astronauts, which is why space weather monitoring is so important.

Source: @apod
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AI in policing: Safeguards can't keep up, new research warns
Artificial intelligence is being adopted across policing and the wider criminal justice system of England and Wales faster than the rules designed to govern it, according to major new research published by Northumbria University.

The study—the most comprehensive mapping exercise of its kind to date—identifies 70 AI tools already deployed, trialed or under development across the criminal justice system, from contact-center triage and witness statement drafting to digital forensics and facial recognition.

Led by Northumbria University in partnership with the Universities of Glasgow, Northampton, Leicester, Newcastle and Cambridge, the four-year PROBabLE Futures project was funded by Responsible AI UK as a 4.2 million-pound Keystone Project. The team spent the past year building an interactive mapping tool and conducting interviews between May 2025 and January 2026 with police officers, government officials, legal professionals, oversight bodies, academics and technology vendors.

Of the 70 tools identified, 27 are already live, with around 34 at the trial or pilot stage. More than half, 52%, come from commercial vendors, with most activity concentrated at the community policing, intelligence and investigation stages of the criminal process.

The research delivers a clear central finding: AI is already generating real value in transcription, redaction, crime analysis, vulnerability identification and officer welfare—but only where it has been carefully designed, matched to clearly defined operational problems and robustly evaluated. Across the wider system, adoption is outpacing the institutional, evidential and governance frameworks needed to support it.

A particular focus of the report is the concept of the "human in the loop"—the principle that a person should review and remain accountable for AI outputs. The research finds this principle often exists in name only, providing a false sense of assurance rather than a genuine safeguard.

The report also highlights a counterintuitive risk: As a tool approaches near-perfect accuracy, people may stop checking its outputs, meaning rare errors are more likely to go undetected and carry serious consequences. This danger grows when AI systems are linked together in sequence, with each stage potentially inheriting and compounding errors introduced earlier.

Source: Phys.org
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NASA’s Lucy Uncovers Ancient Water Clues on a Weirdly Wobbling Asteroid
Even a relatively small asteroid can have a surprisingly dramatic history. During a close flyby of the asteroid Donaldjohanson, NASA’s Lucy spacecraft discovered an oddly shaped world that wobbles through space, bears scars from an ancient collision, and even preserves evidence that liquid water briefly existed on its parent body long ago.

The asteroid formed about 155 million years ago when fragments from a violent impact slowly came back together. Since then, sunlight has steadily altered its rotation through a subtle but powerful process, leaving behind clues to its long and eventful evolution.

Lucy’s Close Encounter With Donaldjohanson
On April 20, 2025, Lucy flew within 650 miles of Donaldjohanson while traveling through the main asteroid belt on its way to the Jupiter Trojan asteroids. The spacecraft captured the first detailed images and scientific measurements of this previously unexplored object.

Rather than rotating around a single axis like most planets and asteroids, Donaldjohanson was found to have a much more complicated motion involving two separate rotational movements. The flyby also revealed its distinctive peanut-like shape along with numerous craters and ridges covering its surface.

The encounter served as a full-scale rehearsal before Lucy begins exploring the Trojan asteroids, starting with its flyby of Eurybates on Aug. 12, 2027. Everything aboard the spacecraft operated as planned, while scientists gained an unexpected opportunity to compare Donaldjohanson with two better-known asteroids, Bennu and Ryugu. Those two bodies have similar compositions but followed very different evolutionary paths after their formation.

The Lucy team’s initial findings were published June 18 in the journal Science.

Source: SciTechDaily
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New Research Traces Origins of Human Laughter
Sound does not fossilize, making it difficult to trace the vocal origins of song, speech, and language,” said University of Warwick researcher Chiara De Gregorio and colleagues.

“Comparative studies of the behavior of (non-human) great apes — our closest living relatives — provide the only extant model of extinct vocal capacities and adaptive functions among human ancestors.”

“While all major branches of the hominid family have evolved distinct call repertoires shaped by their species-specific socio-ecologies, one vocalization has been conserved across species and age-sex classes: laughter.”

In the study, the researchers recorded laughter from 17 individuals across all five great ape species in both tickling and social play situations.

The study involved four orangutans, two gorillas, three bonobos, four chimpanzees, and four humans, including children between six months and seven years old.

Their analysis revealed that laughter across all species is isochronous — that is, the bursts occur at regular, evenly spaced intervals — a property also observed in music and speech rhythm.

According to the scientists, this basic rhythmic structure was already present in a shared common ancestor 15 million years ago and has remained remarkably conserved with all living great apes still show the same underlying pattern.

But they also found meaningful differences along the evolutionary tree: as species grow closer to humans on the family tree, their laughter becomes faster, more variable in timing, and more sensitive to social context.

Humans stood out as the only species to adjust their laughter tempo depending on whether they were being tickled or engaged in free play.

The authors also noted that in human laughter, variable timing is perceived as more emotionally warm and socially positive than rigid, robotic-sounding laughter, suggesting that rhythmic flexibility carries real social meaning.

Source: Sci.News
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