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In Raman spectroscopy, molecules use some of the energy from incoming light to shift into a more energetic vibration and scatter the remaining light, which scientists can use to confirm the molecule's presence.
Findings
Additional insights we found via Bruker
Because each molecule vibrates in a unique set of states—each corresponding to a specific energy—the difference between the incoming and scattered light serves as a chemical fingerprint that can be matched to the gaps between the states of known chemicals for its identification.
Every molecule vibrates in a unique set of states because each element has its own atomic weight and number of electrons, which influences the number and strength of chemical bonds, the geometry of molecules, and how energy is distributed across these shapes.
Raman spectroscopy has been used to identify contaminants in liquids, such as wines, analyze the chemical composition of evidence, and verify the authenticity of pharmaceuticals.
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