Groundbreaking: ‘Controlled’ Quakes Triggered Under Swiss Alps

This photograph taken on April 29, 2026 shows a view of the BedrettoLab tunnel, a unique underground research facility operated by the Federal Institute of Technology Zurich (ETH Zurich) located 1,500m beneath the Swiss Alps within a 5.2 km tunnel near Bedretto. (AFP)
This photograph taken on April 29, 2026 shows a view of the BedrettoLab tunnel, a unique underground research facility operated by the Federal Institute of Technology Zurich (ETH Zurich) located 1,500m beneath the Swiss Alps within a 5.2 km tunnel near Bedretto. (AFP)
TT

Groundbreaking: ‘Controlled’ Quakes Triggered Under Swiss Alps

This photograph taken on April 29, 2026 shows a view of the BedrettoLab tunnel, a unique underground research facility operated by the Federal Institute of Technology Zurich (ETH Zurich) located 1,500m beneath the Swiss Alps within a 5.2 km tunnel near Bedretto. (AFP)
This photograph taken on April 29, 2026 shows a view of the BedrettoLab tunnel, a unique underground research facility operated by the Federal Institute of Technology Zurich (ETH Zurich) located 1,500m beneath the Swiss Alps within a 5.2 km tunnel near Bedretto. (AFP)

Researchers have made the ground shake in southern Switzerland, triggering thousands of tiny earthquakes in a monitored setting, as they seek to discover seismicity insights that could reduce risks.

"It was a success!" said Domenico Giardini, one of the lead researchers on the project, as he inspected a crack in the rock wall lining a narrow tunnel far below the Swiss Alps.

Wearing a fluorescent orange jumpsuit and helmet, the geology professor at the Federal Institute of Technology in Zurich (ETH Zurich) switched on his headlight to get a better look.

"We had seismicity," he said excitedly, explaining that the goal was "to understand what happens at depth when the Earth moves".

Giardini was standing in the BedrettoLab carved out in the middle of a narrow 5.2-kilometer (3.2-mile) ventilation tunnel leading to the Furka railway tunnel.

Reached by specially adapted electric vehicles that slide through the dank darkness along concrete slabs laid over a muddy dirt floor, the deep underground laboratory is the ideal location to create and study earthquakes, Giardini said.

"It is perfect, because we have a kilometer and a half of mountain on top of us... and we can look very close at the faults, how they move, when they move, and we can make them move ourselves," he told AFP.

- 'Earthquake machine' -

Typically, researchers seeking to study earthquakes place sensors near known faults and wait.

In the BedrettoLab, by contrast, researchers filled a pre-selected fault with sensors and other instruments, and then sought to trigger movement.

For the experiment, dubbed Fault Activation and Earthquake Rupture (FEAR-2), dozens of scientists from across Europe spent four days in late April injecting 750 cubic meters of water into boreholes drilled into the tunnel's rock walls, aiming to provoke a magnitude-1 earthquake.

"We don't create a new fault... We only facilitate that it moves," Giardini said.

During the experiment, no people were in the tunnel for safety reasons, with everything managed remotely from the ETH Zurich lab in northern Switzerland.

When AFP visited the Zurich lab a day into the experiment, scientists were excitedly discussing the first signs of seismicity on the monitors.

"This is kind of pushing the frontier of science," said Ryan Schultz, a seismologist specialized in man-made earthquakes.

The excitement was interrupted by a sudden power cut in the tunnel that sent the scientists in Zurich scrambling for answers.

"We have our earthquake machine... Now we have to play with the parameters," said Frederic Massin, a French seismologist and technical expert, as he studied his screen for clues to what had caused the outage.

The glitch was short-lived and pumping soon resumed.

- 8,000 earthquakes -

In the end, some 8,000 small seismic events were induced along the targeted fault, but also, surprisingly, along other faults running perpendicular to the main one, sparking local magnitudes ranging from -5 to -0.14.

"We did not reach the target magnitude that we had set, but we reached just below," Giardini said.

That alone was a huge success, he insisted, pointing out that although there had been previous efforts to create tiny earthquakes in lab settings, it was "never at this scale and never this deep".

"It's simply never been tried."

The findings, he said, would help determine the best injection angles for reaching magnitude 1 at the BedrettoLab when researchers next give it a try in June.

Magnitudes on the Richter scale are measured logarithmically, with each whole number increase representing ten times more in measured amplitude.

Magnitudes below zero are still palpable. Anyone standing near the fault during the largest triggered quakes, at -0.14, would have felt an acceleration of "1.5 G", or 1.5 times the standard acceleration due to gravity, Giardini said.

They would have flown "in the air with a big jump", he explained.

- 'Safe' -

Nothing was felt at the surface, and Giardini stressed that by lubricating an existing fault, the team was adding only "about one percent of what is the natural risk".

The experiment, he insisted, was completely "safe".

Giardini explained the importance of the research, stressing: "If we master how to produce quakes of a certain size, then we know how not to produce them."

This was particularly important in connection with underground activities like excavation and extraction, he said, pointing for instance to quakes triggered by disposal of wastewater from the fracking industry in Texas.

He also highlighted South Korea's 5.4-magnitude Pohang quake in November 2017, triggered by water injections at the country's first experimental geothermal power plant.

"Without realizing it, they started injecting and initiating induced seismicity on a large fault, creating a very serious quake," Giardini pointed out.

"We're not saying we should not go underground," he insisted.

"We need to learn how to do it more safely."



‘Fingerprints’ of Black Hole’s Event Horizon Detected for First Time

An actual image of the black hole where scientists looked for a ring of light, which is matter and radiation circling at extreme speeds around a region of darkness representing the black hole. (Event Horizon Telescope collaboration)
An actual image of the black hole where scientists looked for a ring of light, which is matter and radiation circling at extreme speeds around a region of darkness representing the black hole. (Event Horizon Telescope collaboration)
TT

‘Fingerprints’ of Black Hole’s Event Horizon Detected for First Time

An actual image of the black hole where scientists looked for a ring of light, which is matter and radiation circling at extreme speeds around a region of darkness representing the black hole. (Event Horizon Telescope collaboration)
An actual image of the black hole where scientists looked for a ring of light, which is matter and radiation circling at extreme speeds around a region of darkness representing the black hole. (Event Horizon Telescope collaboration)

Scientists have detected the "fingerprints" of a black hole's event horizon -- the boundary from which nothing can escape -- for the first time, according to research published on Wednesday.

The discovery was made by studying ripples in space-time called gravitational waves that were created when two black holes violently smashed into each other.

A black hole's event horizon is known as the "point of no return" because not even light can avoid being swallowed into its darkness.

This has made them incredibly difficult to learn anything about.

However, there is one event of such cataclysmic violence that it could offer a chance to glimpse this extreme phenomenon -- when two black holes merge into one.

When this cosmic death spiral occurs, it shoots gravitational waves across the universe which scientists have been detecting for the last decade.

For the new research published in Nature, an international team of researchers analyzed data from the strongest gravitational wave ever recorded, known as GW250114, detected by the LIGO observatory in January 2025.

By isolating the last burst of waves -- known as "direct waves" -- from this black hole merger, the scientists said they were able to extract information from closer to an event horizon than ever before.

"This black hole horizon concept normally appears in science fiction," lead study author Sizheng Ma of the Perimeter Institute for Theoretical Physics in Canada told AFP.

"But now we are really able to touch the region around the horizon with gravitational data," he added.

"Sometimes I cannot believe this is really happening."

- Causing a stir -

The last stage of two black holes merging is like a spoon stirring a glass of water, Sizheng Ma explained.

The resulting swirl in space creates the ripple of gravitational waves that travel at the speed of light in all directions.

If the metaphorical spoon is stirring close enough to the black hole's event horizon, "this offers us a chance to decode the physics around that region", Sizheng Ma said.

By supporting the theory of general relativity, the results "proved that Einstein was correct again," he added.

The scientists emphasized that more research was needed to decipher what can be gleaned about event horizons using this method.

But they did detect information about how black holes twist space around themselves as they rotate -- a phenomenon known as "frame dragging".

"This is similar to pushing a glass into a table and twisting it, so that the tablecloth winds up around it," Maximiliano Isi, a gravitational wave astrophysicist at Columbia University, told AFP.

In the future, the team of scientists hope to find signs of tiny changes known as quantum fluctuation.

"In this way, we can really probe this near horizon region to look for a new physics," including searching for a deviation from general relativity, Sizheng Ma said.

- Reaction mixed -

Experts not involved in the study urged caution.

Francesco Sannino, an Italian theoretical physicist who studies black holes, told AFP it was "compelling analysis" but needed to be checked by other researchers.

Still, it was "striking" that the scientists were able to show that gravitational waves carried the event horizon's "fingerprints," he said.

The astrophysicist Isi described the work as "tantalizing".

"More generally, understanding the physics of black holes and their mergers is important as it might shed light on how space and time are woven together at a more fundamental level," he told AFP.

Sean McWilliams, an astrophysicist at West Virginia University, was skeptical that the gravitational wave frequency analyzed by the scientists was actually "dictated" by the event horizon.

For this reason, "the actual observed signal doesn't really tell us anything about the horizon or the other properties directly related to it", he told AFP.

Sizheng Ma said McWilliams's statement was "not correct," suggesting he had conflated two different aspects in the paper.

"There is often considerable resistance and criticism in the early stages of promoting a new concept," he said, adding he is working on another paper to "clarify these confusions and possible misinterpretations".


Asteroid Zooming Past Earth on Saturday Visible to Stargazers

FILE PHOTO: A nighttime view of Earth, derived from satellite images taken daily over the past decade, capturing human activity on the planet through the emissions of artificial light, is seen in this image released on April 8, 2026. Michala Garrison/NASA Earth Observatory/Handout via REUTERS
FILE PHOTO: A nighttime view of Earth, derived from satellite images taken daily over the past decade, capturing human activity on the planet through the emissions of artificial light, is seen in this image released on April 8, 2026. Michala Garrison/NASA Earth Observatory/Handout via REUTERS
TT

Asteroid Zooming Past Earth on Saturday Visible to Stargazers

FILE PHOTO: A nighttime view of Earth, derived from satellite images taken daily over the past decade, capturing human activity on the planet through the emissions of artificial light, is seen in this image released on April 8, 2026. Michala Garrison/NASA Earth Observatory/Handout via REUTERS
FILE PHOTO: A nighttime view of Earth, derived from satellite images taken daily over the past decade, capturing human activity on the planet through the emissions of artificial light, is seen in this image released on April 8, 2026. Michala Garrison/NASA Earth Observatory/Handout via REUTERS

A large asteroid that will zoom harmlessly past Earth on Saturday will be visible to stargazers using a small telescope or large binoculars, the European Space Agency announced Wednesday.

The asteroid will come within 2,560,000 kilometers of Earth at 1114 GMT on Saturday, which is more than six times the distance between the Earth and the Moon.

Called (152637) 1997 NC1, the asteroid will be speeding along at nearly nine kilometers a second, posing no threat to Earth as any chance of an impact has been ruled out.

Discovered in 1997, the asteroid is estimated to be between 750 and 1,650 meters wide, according to calculations based on how much sunlight it reflects.

However other estimates suggest it could be smaller, AFP quoted the ESA as saying in a statement.

"A close approach to Earth by an object this size only occurs every few years, although this time the bright nearby Moon might impede its observability at closest approach," Juan Luis Cano of the ESA's Planetary Defense Office said in a statement.

For stargazers with telescopes or binoculars, the asteroid will be visible in parts of the Northern Hemisphere as it approaches, almost everywhere as it speeds past Earth, and only from the Southern Hemisphere as it departs.

But this depends if people are in areas of the world where the sky is dark enough as it passes.


Think Tank: Singapore, Indonesia, Malaysia and Brunei Face High Risk of Severe Haze this Year

People stop by a cafe with murals painted on its facade in the Arab Street district of Singapore on June 16, 2026. (Photo by Roslan RAHMAN / AFP)
People stop by a cafe with murals painted on its facade in the Arab Street district of Singapore on June 16, 2026. (Photo by Roslan RAHMAN / AFP)
TT

Think Tank: Singapore, Indonesia, Malaysia and Brunei Face High Risk of Severe Haze this Year

People stop by a cafe with murals painted on its facade in the Arab Street district of Singapore on June 16, 2026. (Photo by Roslan RAHMAN / AFP)
People stop by a cafe with murals painted on its facade in the Arab Street district of Singapore on June 16, 2026. (Photo by Roslan RAHMAN / AFP)

Singapore, Indonesia, Malaysia and Brunei face a high risk of severe haze this year due to hot and dry weather conditions, biofuel demand and economic pressures, a research institute said Wednesday.

The Singapore Institute of International Affairs said it was the second time it had issued a red risk rating since launching its Haze Outlook report in 2019. The previous red risk rating was in ⁠2023, Reuters reported.

Here are some ⁠details:

August to September is the peak danger period for haze in the Southeast Asian region, driven by the El Niño and Indian Ocean Dipole weather phenomena, the report said.

The ⁠return of El Niño is expected to create a longer and stronger dry season at a time when fire preparedness could be adversely affected by economic uncertainty and cost pressures.

The SIIA said rising costs of fertilizer and fuel as a result of the Iran war could lead to unsustainable activity such as the use ⁠of ⁠fire rather than machinery to clear land and dispose of waste.

Land use could also intensify as demand for biofuels rises due to energy supply disruptions.

"This trend will continue even if the US-Iran agreement holds, as countries now want energy independence," said SIIA associate director Khor Yu-Leng.

ASEAN cooperation and sustainable land management will be critical to reducing risks, the report said.