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KAIST prototype creates light-readable nanoparticle fingerprints

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A flashlight is enough to start the test. A laser pointer finishes it. Researchers at KAIST and Sungkyunkwan University have built a prototype security technology in which randomly assembled nanoparticles create two optical fingerprints for the same product—one revealed by ordinary light, the other by a laser.

The structure is a physical unclonable function, or PUF: a security identity drawn from microscopic physical differences created during manufacturing. Spherical particles hundreds of nanometers in size self-assemble on a water surface into many crystalline domains, each with its own size and orientation. The arrangement changes each time, making an exact copy difficult to produce even with the same materials and process.

The verification is designed to avoid the equipment that has limited conventional high-security PUFs. Under a smartphone flashlight, the nanopattern produces a distinctive color and reflection pattern. Under a laser pointer, its microscopic structure scatters light in multiple directions, generating a second signal. A counterfeit would therefore need to reproduce both the physical arrangement and its responses to two different kinds of illumination.

The teams transferred the nanopatterns onto flexible plastics, metals, transparent films and hydrogels—soft, water-retaining materials. That opens several possible uses: a hardware ID for electronic products and Internet of Things devices, or a transparent security sticker for luxury goods, artworks and pharmaceuticals that does not obscure a product's appearance.

And so what, concretely? Authentication could move closer to the object and the person checking it: a flashlight and a laser pointer, rather than a microscope or spectroscopic imaging system. The researchers' demonstrations show a route to everyday verification, but the work remains a foundational prototype; the proposed product and device applications have not been described as deployed services.

hundreds of nanometersApproximate size of the spherical particles

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