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A new crystalline form of water ice has been discovered in fleeting transitions between phases at high pressures.It's ca...
01/03/2023

A new crystalline form of water ice has been discovered in fleeting transitions between phases at high pressures.

It's called Ice-VIIt, and it takes place as the substance slides between two already known, cubic arrangements of molecules. Although it's unlikely Ice-VIIt would naturally appear on Earth's surface, it could reveal more about how water behaves on massive alien worlds.

We might think it commonplace, but water is actually pretty weird compared to other liquids we know. The arrangement of molecules within water's frozen form – ice – can vary significantly, depending on the conditions around it.

We know of at least 19 of these solid phases of ice, some of which occur naturally, some of which have only been seen in laboratory conditions.

The ice you see in the freezer, or falling from the sky as snowflakes or hailstones, is the most common natural ice on Earth. It is called Ice-I, with oxygen atoms arranged in a hexagonal grid. The structure is, however, geometrically frustrated, with the hydrogen atoms hanging about in a disorderly fashion.

When physicists cool Ice-I at various temperatures and apply different pressures to it, the hydrogen and oxygen atoms within can periodically reach different arrangements, sometimes even ordering themselves more neatly. These various forms of water ice are not always stable, but we can explore these in the lab to reveal their curious molecular structures.

Two of these phases that have cubic structures are Ice-VII, which has disordered hydrogen, and Ice-X, which is symmetric. These can be reached by subjecting ice to high pressures tens to hundreds of thousands greater than Earth's atmospheric pressure at sea level, Ice-VII at even lower pressures than Ice-X.

To study the transitions between ice phases, a team of physicists led by Zach Grande of the University of Nevada, Las Vegas performed experiments on high pressure ice using a new technique to measure the properties of the ice as pressure was applied.

The researchers squeezed a sample of water in a diamond anvil, forcing it to freeze in a jumble of crystals. Lasers were used to then heat the sample, causing it to melt before re-freezing into what the researchers described as a powder-like collection of crystals.

By incrementally raising the pressure in the anvil, with periodic blasts from the laser, the researchers created Ice-VII, and observed the transition to Ice-X. In between, thanks to their new measurement technique, they also observed the new intermediate phase, Ice-VIIt.

New Chip Fabrication Technique Points to Incredibly Thin, Flexible ComputersYou only need to take a look at the hefty ma...
24/02/2023

New Chip Fabrication Technique Points to Incredibly Thin, Flexible Computers
You only need to take a look at the hefty mainframes of the 1950s and 1960s to understand how quickly computers and electronics have been miniaturised, but there's room for them to go smaller still, if this new research is any indication. Scientists have come up with a new chip fabrication approach that they say could lead to much thinner and flexible computer chips in the future.

Developed by a team at MIT, it's the first chip fabrication technique where significantly different materials are deposited in the same layer. Today's computer chips, in contrast, are built from (very thin) layers stacked on top of one another, with precise patterns etched into them. The researchers say they've refined the process far enough to be able to build chips containing "all the circuit components necessary to produce a general-purpose computer".

"The methodology is universal for many kinds of structures," says Xi Ling, one of the authors of the paper. "This offers us tremendous potential with numerous candidate materials for ultra-thin circuit design."

The layers of material are just 1-3 atoms thick, and they chose graphene as one of the materials used - the 'wonder material' has already been used in a variety of different innovations and experiments, and its thinness and strength makes it perfect for use in thin-film electronics.

In fact, the new process can mix any material that combines elements from group 6 of the periodic table (including chromium, molybdenum, and tungsten) and elements from group 16 (including sulphur, selenium, and tellurium). As many of these compounds are semiconductors - which form the basis of transistor design - they can prove very useful in extremely thin layers of electronics.

In the tests run by the MIT team, a layer of graphene is deposited on a silicon substrate, with gaps etched in for the second material to fill. This second material, molybdenum disulphide, is applied using a solid bar of material known as a PTAS. As the PTAS passes over the chip, its molecules cause a reaction with the exposed silicon, and a layer of molybdenum disulphide is formed. The same process can be used to combine several different materials in the same way.

While the science is tricky to wrap your head around, the eventual applications are simple: thinner, more flexible electronics that take new shapes, set new levels of portability, or attach themselves to other objects as a layer of film. The next step is to use the technology to try and create tunnelling-transistor processors, which use a quantum mechanical effect to block a charge or allow it through.

The Chilling Tale of The 'Demon Core' And The Scientists Who Became Its VictimsIt was August 13, 1945, and the 'demon co...
21/02/2023

The Chilling Tale of The 'Demon Core' And The Scientists Who Became Its Victims
It was August 13, 1945, and the 'demon core' was poised, waiting to be unleashed onto a stunned Japan still reeling in fresh chaos from the deadliest attacks anyone had ever seen.

A week earlier, 'Little Boy' had detonated over Hiroshima, followed swiftly by 'Fat Man' in Nagasaki.

These were the first and only nuclear bombs ever used in warfare, claiming as many as 200,000 lives – and if things had turned out a little differently, a third deadly strike would have followed in their hellish wake.

But history had other plans.

After Nagasaki proved Hiroshima was no fluke, Japan promptly surrendered on August 15, with Japanese radio broadcasting a recorded speech of Emperor Hirohito conceding to the Allies' demands.

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