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The hard drive in your computer stores information in tiny regions that can be flipped from one magnetic polarity to the other to materials science engineering the zeroes and ones of binary data. The demonstration may not lead immediately to faster memories but gives researchers a promising pathway to pursue them. In most magnetic materials, each atom has a spin that materials science engineering like a microscopic magnet.

If all these spins point in the same direction, the pattern is panico ferromagnetic order, as found, for example, inside an ordinary iron magnet. But magnetic order can be more subtle, with materials science engineering direction of spins varying systematically across the atomic lattice.

Atomic spins in a materials science engineering can alternately point up materials science engineering down, for example, materials science engineering they can gradually rotate to trace out a helix as you move across the lattice. These and other configurations produce no large-scale magnetism because every spin is cancelled out by another.

This kind of pattern is known as antiferromagnetic order. The bits of modern magnetic memories are typically small domains of ferromagnetic order. Flipping a bit requires simultaneously reorienting many atomic spins, limiting the speed of information rewriting.

Physicists have long suspected that it should be easier to switch a region of antiferromagnetic order into a non-antiferromagnetic state, because you can use light to knock spin-carrying electrons from one atom to a neighbor, disrupting the geometric pattern. They used pulses of infrared laser light to disturb the magnetic order of dysprosium samples by nudging electrons responsible for the magnetism from one atom materials science engineering another.

To monitor how quickly the magnetic order changed, they then scanned the sample with pulses of x rays, whose scattering depends on the magnetic state of dysprosium.

The researchers found that the antiferromagnetic zones lost their magnetic order around 30 times faster than the ferromagnetic zones and required much less laser energy to trigger the change. In a ferromagnetic zone, parallel materials science engineering add up to create a large total angular momentum. Disrupting ferromagnetism requires transporting the angular momentum away materials science engineering the spin system into other parts of the surrounding environment.

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