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A Broken Diamond Turns To Pencil Lead In Nanoseconds

Diamond and graphite are both pure carbon. The only difference is how the atoms are stacked: diamond locks each carbon atom into a rigid four-way cage, graphite stacks the atoms in loose sheets that slide past each other, which is why one scratches glass and the other rubs off on paper. The assumption has always been that turning diamond back into graphite takes geological time, heat, or both. A new set of shock experiments, reported this week and covered by the Times of India, used a high-velocity impact to compress diamond and watched it revert to graphite in a matter of nanoseconds, billionths of a second, fast enough that the cage structure does not have time to melt first. It simply buckles.

The mechanism is pressure, not heat. Slam a shockwave through diamond hard enough and the carbon-carbon bonds bend past their limit before the lattice can do anything else, flipping the atoms straight into graphite's flat sheets without passing through a liquid phase. That matters beyond party-trick physics: planetary scientists use exactly this kind of shock data to work out what happens when asteroids hit carbon-rich planets, and materials engineers use it to figure out how fast a diamond anvil or armor plate can fail under impact. The work is benchtop, a shock-compression rig, not a mine or a reactor, and the next gate is whether the same collapse mechanism holds at the higher pressures inside a planetary core, the regime the researchers say their next set of shots will target.

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