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Cambridge researchers demonstrate light beam moving upstream in quantum fluid

Researchers at the University of Cambridge have demonstrated that a narrow beam of light can move upstream through a flowing quantum fluid of polaritons, a result announced in a paper published onlinโ€ฆ

Light beam 'swims' upstream through a quantum fluid by violating Newton's third law
Phys.org โ€” 22 September 2026
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Researchers at the University of Cambridge have demonstrated that a narrow beam of light can move upstream through a flowing quantum fluid of polaritons, a result announced in a paper published online on Monday. The experiment, carried out in a semiconductor microcavity at cryogenic temperatures, showed the light pulse travelling against a polariton stream at speeds up to 0.3โ€ฏmmโ€ฏsโปยน, effectively โ€œswimmingโ€ upstream while the surrounding fluid continued downstream. The finding overturns the usual expectation that objects are dragged along by a moving medium unless an external force is applied, and it appears to violate Newtonโ€™s third law in the conventional sense.

The work builds on a decade of research into quantum fluids of light, where photons acquire mass and interact strongly enough to behave like a superfluid. In such a state, particles can flow without friction, and disturbances normally generate drag forces that push them downstream. Earlier studies showed that light can flow without resistance, but they never observed a negative drag, where the moving object pushes the fluid forward while moving backward. Understanding this counterโ€‘intuitive behaviour is important for both fundamental physics and emerging photonic technologies, because it reveals new ways to control lightโ€‘matter interactions at the quantum level.

In the Cambridge setup, a continuousโ€‘wave laser created a polariton condensate that was set into motion by a gradient in the cavityโ€™s potential. A second, weaker laser injected a narrow probe beam into the flow. Highโ€‘speed cameras recorded the probeโ€™s trajectory, showing it bending upstream and maintaining its shape over several hundred micrometres. The team measured a reversal of the drag coefficient, confirming the negativeโ€‘drag regime predicted by recent theoretical models. Lead author Drโ€ฏLydia Chen said the result opens a path toward lowโ€‘energy optical circuits where signals can be routed against a background flow without extra power. The researchers plan to explore largerโ€‘scale devices and to test whether similar upstream motion can be achieved in roomโ€‘temperature materials, a step that could bring quantumโ€‘fluid concepts into practical photonic chips.

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