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Nuclear fusion holds huge promise as a source of clean, abundant energy that could power the world. Now, fusion researchers at a national laboratory in the US have achieved something physicists have been working towards for decades, a process known as “ignition”.

This step involves getting more energy out from fusion reactions than is put in by a laser.

But just how close are we to producing energy from fusion that can power people’s homes? While the ignition is only a proof of principle and the first step in a very long process, other developments are also in the works and together they could spark renewed enthusiasm for making fusion a practical reality.

First, it’s important to recognise that the latest result is indeed a real milestone.

The researchers at the National Ignition Facility (NIF) in California fired the world’s biggest laser at a capsule filled with hydrogen fuel, causing it to implode and starting fusion reactions that mimic what happens in the Sun.

The fusion energy released by the implosion was more than that put in by the laser, a massive achievement given that, just a few years ago, the NIF laser could only get out about a thousandth of the energy it put in.

However, around 10,000 times more energy had to be put into the laser than it produced in light energy.

It can only be run once a day. And every target is so exquisitely designed that each one costs thousands of dollars.

To produce a reactor for a working power station, you would need a laser that produced light energy at much greater efficiency (a few tens of percent) and shot targets successfully at ten times per second, with each target costing a few pence or so.

In addition, each laser shot would need to produce many times – perhaps 100 times – more energy out than was put in.

Very little research has actually been done on fusion “reactors”, where neutrons from the reactions would help drive a steam turbine to produce electricity. But there are other reasons for hope.

Firstly, while NIF has taken more than a decade to achieve ignition, during the same period, scientists have independently developed new lasers.

These use electronic devices called diodes to transfer energy to the laser and are very, very efficient, converting a good fraction of the electricity from the grid into laser light.

Prototype versions of such lasers have been proven to work at the rates of 10 times per second, which would be required for them to be useful in fusion.

These lasers are not yet of the size needed for fusion, but the technology is proven, and the UK leads in this type of research.

Also, the approach to fusion used by the scientists at NIF has some well-known, inherent inefficiencies, and there are several other ideas that could be much more effective.

Nobody is absolutely certain that these other ideas would work, as they have their own unique problems, and have never been tried at scale.

To do so would require hundreds of millions of dollars of investment for each of them with no guarantee of success (otherwise it would not be research).

However, there is now a wind of change blowing: the private sector.

Various funds with a very long-term outlook have started to invest in new start-up firms that are touting fusion as a commercially viable source of energy.

Given that it was private industry that has revolutionised the electric car market (and the rocket industry), maybe that sector could also give fusion the “kick” it requires.

Private firms can work a lot faster than governments, and pivot quickly to adopt new ideas when required.

Estimates of the total private funding in the sector now stand in excess of $2 billion (roughly Rs. 16,500 crore), peanuts compared with the $2 trillion (roughly Rs. 165 lakh crore) in revenue produced by the oil and gas industry each year.

There is still a lot of room in the marketplace for the high-risk, high-pay-off players.

The latest results show that the basic science works: the laws of physics do not prevent us from achieving the goal of unlimited clean energy from fusion.

The problems are technical and economic. While fusion may be too far off to solve matters on the timescale of a decade or two, the latest advance will at least bolster enthusiasm about solving one of humanity’s grand challenges.


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SpaceX Launches 26 New Starlink Satellites, Expands Global Internet Network

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SpaceX Launches 26 New Starlink Satellites, Expands Global Internet Network

SpaceX just aced another launch of its Starlink internet satellites. On Thursday night (June 12), the company launched 26 new Starlink spacecraft to join its ever-growing internet megaconstellation in orbit. Flying from Launch Complex 4 East (SLC-4E) at California’s Vandenberg Space Force Base, the launch occurred at 9:54 p.m. EDT (6:54 p.m. PDT or 0154 GMT) on June 13. The satellites are planned to be deployed into orbit from the second stage about one hour and one minute after liftoff. This accomplishment brings to more than 7,600 the number of active satellites for SpaceX’s Starlink.

As per SpaceX’s official update for its 15-6 mission, the rocket’s first-stage booster, known as B1081, flew for the 15th time after 14 prior flights. It successfully touched down on the droneship Of Course I Still Love You in the Pacific Ocean, off the coast of southern California, yet again. The company’s current record for reflight of Falcon 9 boosters is 28 flights, proving itself at the same time to be the best at orbital launch efficiency.

Thursday’s mission marks the 72nd Falcon 9 launch, with 53 of those dedicated to the Starlink network. The system aims to provide high-speed internet access around the world, and an increasing number of satellites provide direct-to-cell services for texting and a limited data connection on certain kinds of smartphones and through certain carriers.

Elon Musk’s SpaceX continues to add satellites to the Starlink constellation to increase redundancy and coverage, particularly in remote areas. The current constellation has wide coverage of the Earth, allowing small satellite dishes and mobile phones to connect to the internet in real time in dozens of countries.

SpaceX is simultaneously expanding the reach of Starlink and laying the groundwork for next-generation applications like in-flight connectivity and emergency response communications. With more than 7,600 satellites now orbiting Earth and as many as dozens of additional launches on the docket, Starlink is rapidly redefining how global internet coverage can work in the modern era.

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Aurora Alert! Northern Lights May Be Visible as Far South as New York on June 14

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Aurora Alert! Northern Lights May Be Visible as Far South as New York on June 14

A rare display in the night sky could be visible to skywatchers in the U.S., as the National Oceanic and Atmospheric Administration (NOAA) has issued a geomagnetic storm watch for the night of June 14. The moderate G2-level event, fuelled by disturbances in solar wind, might produce auroras visible as far south as New York and Idaho, providing a spectacular light show far beyond the usual polar zones. While it’s welcome news for aurora enthusiasts, experts caution that extended daylight hours due to the approaching summer solstice could limit ideal viewing windows.

Coronal Hole Sparks Geomagnetic Storm; Auroras May Glow as Far South as New York June 14

As per the statement from NOAA’s Space Weather Prediction Centre (SWPC), this increase in geomagnetic activity is associated to a greater degree with a co-rotating interaction region (CIR), a turbulent region where high-speed streams of solar wind collide with slower-moving wind. While these CIRs may not be as dramatic as CMEs, they can still lead to shock waves that rattle the Earth’s magnetic field. The latest CIR was formed around a large coronal hole – a particularly dark region in the Sun’s outermost atmosphere – that is currently facing Earth and spewing high-speed solar wind directly into space.

Coronal holes are allowed to expand and develop into space weather due to reduced density and lower temperature solar wind pressing outward. Forecasts suggest a Kp index of 5.67 on 14 June, so there is another chance for auroras at lower latitudes.

To catch the northern lights, search for dark, clear skies in the hours before dawn, and check in with NOAA’s 3-day space weather forecast, as well as real-time resources like the “My Aurora Forecast & Alerts” app.

The aurora is weather and atmospheric conditions permitting, and should be visible for those based outside of the Arctic Circle viewing it during an approaching storm.

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New Island Forms in Caspian Sea as Water Levels Drop, Russian Scientists Confirm

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New Island Forms in Caspian Sea as Water Levels Drop, Russian Scientists Confirm

Russian scientists have confirmed a brand-new island in the northern Caspian Sea. Satellite imagery from late 2024 first hinted at a sandbank breaking the surface, and a field expedition in mid 2025 verified it. The feature lies about 30 km southwest of Maly Zhemchuzhny Island, on the Europe-Asia boundary of the world’s largest inland sea. It barely rises above the water, and it appeared as the Caspian’s level reached unusually low values. Scientists note the sea has fallen in recent decades (linked to higher evaporation in a warming climate and regional tectonic shifts) and has been dropping again since the 2010.

Confirming the Island’s Emergence

According to a translated statement , in November 2024, satellite images showed a pile of sand and sediment poking above the sea surface. When a Russian research vessel reached the location, scientists saw a flat, sandy patch just above the water. Its surface was damp and crisscrossed by small ridges of sand, but only a few inches higher than the surrounding sea. Approaching by boat proved tricky: very shallow water and foul weather meant the team could not actually land on the new islet. Instead, researchers flew drones (quadcopters) to photograph the site from above. These aerial pictures confirmed the island’s outline and scale. In the field images, the new island appeared as a low, sandy plain with no vegetation.

Environmental Significance and Future Outlook

The island highlights the Caspian’s shifting waters and geology. Scientists have observed that long-term cycles of water rise and fall can expose underwater banks as temporary islands, as seen in the Kumani Bank mud volcano off Azerbaijan’s coast. The island, which could become a nesting ground for seabirds or a haul-out site for Caspian seals, could be influenced by climate-driven water loss and tectonic or volcanic activity. The island’s fate will help scientists understand the interaction between Caspian water levels, climate change, and Earth movements, and what new habitats may emerge when an inland sea shifts its shoreline.

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