Uploaded October 2025 | Updated September 2026, 2 weeks ago
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A supersolid is a phase of matter combining properties of solids and superfluids.
Researchers recently engineered photons that interact strongly enough to act collectively.
By coupling light to ultracold atoms, they slowed photons to nearly rest.
These photons form quasi-particles called polaritons — hybrids of light and matter.
In this state, light gains structure, forming wave-like crystalline patterns.
The material behaves rigidly like a solid — but flows without friction.
Supersolids were first created with helium, but doing this with light is groundbreaking.
This proves that even “massless” particles can mimic matter under the right conditions.
The effect relies on Bose–Einstein condensation, where particles act in perfect sync.
Supersolid light could revolutionize quantum simulations and optical computing.
It might also lead to new states of matter beyond current physics.
The control of photon interactions hints at future photonic quantum devices.
While purely experimental, it blurs the line between light and matter itself.
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tiktok.com/@ptrckm_
Support channel: buymeacoffee.com/PtrckM
A supersolid is a phase of matter combining properties of solids and superfluids.
Researchers recently engineered photons that interact strongly enough to act collectively.
By coupling light to ultracold atoms, they slowed photons to nearly rest.
These photons form quasi-particles called polaritons — hybrids of light and matter.
In this state, light gains structure, forming wave-like crystalline patterns.
The material behaves rigidly like a solid — but flows without friction.
Supersolids were first created with helium, but doing this with light is groundbreaking.
This proves that even “massless” particles can mimic matter under the right conditions.
The effect relies on Bose–Einstein condensation, where particles act in perfect sync.
Supersolid light could revolutionize quantum simulations and optical computing.
It might also lead to new states of matter beyond current physics.
The control of photon interactions hints at future photonic quantum devices.
While purely experimental, it blurs the line between light and matter itself.
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