❌

Normal view

There are new articles available, click to refresh the page.
Before yesterdayMain stream

What happens when quantum mechanics and relativity meet?

11 September 2026 at 07:20

Almost a hundred years ago, physicists theorized out what free fall should do to a quantum wave. If the solution they came up with is wrong, quantum mechanics and Einstein's theory of gravity flatly contradict each other. But testing it has been impossible because nobody has managed to build an interferometer that could perform the necessary measurement.

Now, a team led by Ron Folman, a physicist at Ben-Gurion University of the Negev, with collaborators in Germany, the UK, and the US, including Nobel laureate Roger Penrose, has done it. They built a new interferometer that gives a single atom two possible paths at once: one that involves a free fall, and another where it is held perfectly still. Both paths end at the same place at the same moment, allowing the team to measure what the fall does to a wave-like property of the atom.

Long time coming

Ever since Galileo, physicists have known how to describe a falling objectβ€”where it is, how fast it goes, or how quickly it accelerates. Quantum mechanics, though, insists that every object is also a wave. β€œEvery particle, doesn't matter if it's a car or a spaceship or an atom, is a wave,” Folman says. β€œEverything that is a wave, like sea waves or sound waves, goes up and down. And if you're up or down, this is measured by something called a phase. A phase just tells you if you are at the top of the wave or at the bottom.”

Read full article

Comments

Β© ALIOUI Mohammed Elamine

Raindrops are tiny lightning bolts, and they’re corroding cars, study finds

31 August 2026 at 13:11

The standard explanation for why rain causes corrosion is that water carries dissolved salts and acids to a surface, constant drumming of raindrops abrades whatever protective coating is on it, and oxygen does the rest. Nearly all our tools to prevent thisβ€”paints, polymer films, or oxide layersβ€”are built around this idea. But we’ve apparently been missing something important about the rain.

A new study led by Zhongyuan Ni, RΓΌdiger Berger, and Hans-JΓΌrgen Butt at the Max Planck Institute for Polymer Research in Mainz, Germany, has shown that water drops routinely arrive at a surface carrying an electrical charge large enough to punch through an insulating coating. Not scratch it. Not slowly dissolve it. Electrically blow a hole in it, the way a spark jumps a gap.

Charged rain

The starting point of the study is a phenomenon called "slide electrification," which has only been properly quantified in the past few years. When a water drop slides across an insulating surface like a leaf, a painted wall, a windowpane, or a plastic panel, it strips charge from that surface and leaves an opposing charge behind. The voltages involved are not trivial. Drops charged this way have been measured at up to 9,000 volts.

Read full article

Comments

Β© simonkr/Getty Images

El NiΓ±o is now stronger than at any point in the last 1,000 years, study finds

31 August 2026 at 12:04

Every few years, El NiΓ±o or its cool counterpart, La NiΓ±a, shifts rainfall across the tropics, dries out Australia, floods parts of Peru, and rearranges the weather on most of the planet. The two are the warm and cold swings of a single system, the El NiΓ±o–Southern Oscillation, or ENSO, and that system is the largest source of year-to-year climate variation on Earth. Its swings sit atop the steadily rising temperatures driven by global warming.

But we didn't know whether global warming was making it stronger. It’s possible that the added energy in the atmosphere and oceans was causing its swings to be more dramatic.

β€œWe've been seeing some very strong El NiΓ±o events in the late 20th and early 21st century, and what we didn't know was how unusual those are,” said Julie Cole, an environmental scientist at the University of Michigan. Because models disagree with one another and the instrumental data are too short to separate a trend, Cole’s team reconstructed a thousand-year-long ocean surface temperature record by analyzing fossilized GalΓ‘pagos corals.

Read full article

Comments

Β© NOAA

Putting mice into hibernation causes a major loss of synapses

22 August 2026 at 07:22

Our leading hypothesis for how our memories are stored is that when you learn something, the connections among neurons involved get stronger and physically larger, and that constitutes the memory. The trouble is that these connections significantly change over timeβ€”they’re plastic.

β€œIf you compare the arrangement of these connections on day one with the same on day four or five, it's very, very different," says Kazumasa Tanaka, a neuroscientist at the Okinawa Institute of Science and Technology Graduate University in Japan. To learn how a memory that can last for years can sit on hardware that shifts every few days, Tanaka’s team made the shift a bit more dramatic. In a recent Science study, they induced a hibernation-like state in mice, which basically erased the state of more than half of their synapses. And yet the mice apparently have kept their memories.

Hibernation on demand

Hibernation is a specialty of squirrels, hamsters, and bears, but the neural circuit that triggers it is conserved across mammals, and is present in species that never hibernate in the wildβ€”like mice. In June 2020, a team of researchers led by Takeshi Sakurai, a neuroscientist at the University of Tsukuba and a collaborator on Tanaka’s study, developed a technique to artificially activate this hibernation circuit. This can be done by activating a population called Q neurons in a region of the hypothalamus.

Read full article

Comments

Β© Sasha Fox Walters

❌
❌