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    <title>Chemical-Sensing on AI Science Report</title>
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      <title>A 73-Year-Old Chemical Reaction Just Produced Something Never Seen Before: a Frequency Comb</title>
      <link>https://aiscience.uk/posts/chemical-frequency-comb-belousov-zhabotinsky/</link>
      <pubDate>Tue, 14 Jul 2026 00:00:00 +0800</pubDate>
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      <description>&lt;p&gt;In 2005, the Nobel Prize in Physics went to a technology that measures light with a precision so extreme it can count individual cycles of a laser beam. The optical frequency comb, a spectrum of evenly spaced, perfectly synchronized lines, became the ruler that redefined how we measure time, distance, and the composition of distant stars. Since then, the same pattern has turned up in vibrating crystals, magnetic materials, ferroelectric devices, and even cosmological models of the early universe.&lt;/p&gt;&#xA;&lt;p&gt;One place it had never appeared, until now: a bubbling dish of chemicals changing color.&lt;/p&gt;</description>
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      <title>This Metamaterial Reads Molecules Like Fingerprints — and Cleans Itself After Every Use</title>
      <link>https://aiscience.uk/posts/metamaterial-fingerprint/</link>
      <pubDate>Mon, 29 Jun 2026 00:00:00 +0800</pubDate>
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      <description>&lt;p&gt;In 1974, a group of scientists at Imperial College discovered that when you shine light on a rough silver surface, the molecules sitting on top of it scatter far more light than they should, about a million times more. That accidental finding, surface-enhanced Raman spectroscopy (SERS), gave chemists a superpower: the ability to identify individual molecules by the way they vibrate. A few years later, researchers found that infrared light, the kind your TV remote uses, could be similarly amplified on nanostructured surfaces. The catch? Nobody could get both techniques to work on the same device.&lt;/p&gt;</description>
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