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Sunlight experiment demonstrates high-fidelity quantum-entangled photons without lasers

By DigiconAsia Editors | Friday, August 14, 2026, 5:19 PM Asia/Singapore

Sunlight experiment demonstrates high-fidelity quantum-entangled photons without lasers

Researchers turn concentrated natural sunlight into Bell-inequality-violating entangled photon pairs, suggesting space-based quantum communication potential

In a breakthrough that challenges long-held assumptions about quantum technology, scientists at the University of Ottawa and the Max Planck Institute for the Science of Light have successfully created quantum-entangled photons using nothing more than natural sunlight.

This achievement marks the first time that sunlight has been used to generate quantum entanglement, a phenomenon previously thought to require highly controlled laser systems.

The findings, published in the peer-reviewed journal Optica on 6 August 2026, demonstrate that the entangled state produced from sunlight achieved approximately 94% similarity to a perfectly entangled state, and successfully violated Bell’s inequality, the gold-standard test that distinguishes genuine quantum entanglement from classical correlations.

How they pulled it off

The experimental approach centers on a process called spontaneous parametric down-conversion (SPDC), in which a pump photon enters a non-linear crystal and occasionally splits into a pair of entangled lower-energy photons. For decades, researchers have relied on lasers to supply the pump beam because their narrow bandwidth and high coherence make the process easier to manage and predict. Sunlight, by contrast, presents significant challenges: it contains a broad spectrum of wavelengths, arrives from many different directions, and lacks the spatial coherence that lasers provide.

According to Cheng Li, the first author of the study, the critical theoretical insight was recognizing that polarization entanglement depends only on the orderliness of the light’s oscillation direction, not on its color or spatial coherence. The team had therefore designed their experimental setup so that differences introduced by the various colors and propagation directions in sunlight would not affect the photons’ polarization properties.

Focusing sunlight onto a crystal only a millimeter in size presented a substantial engineering hurdle. To overcome this, the researchers had employed a specialized solar concentrator developed by Hanieh Fattahi at the Max Planck Institute. This device uses a window-sized Fresnel lens combined with an all-glass cone to compress sunlight into an optical fiber roughly the width of a human hair. The outdoor experiment took place at the Max Planck Institute for the Science of Light in Erlangen, Germany.

Proof of concept, with promising applications

The implications for space-based quantum communication are particularly promising. Satellites already receive intense, uninterrupted sunlight, making them ideal candidates for this technology. Li noted that this approach could one day enable satellites to create secure encryption keys using the sunlight already abundant in space, reducing the need for onboard lasers and much of the supporting hardware. The concept could also lessen the energy burden associated with scaling up quantum computing and sensing systems.

However, the current work remains a proof of principle. Improvements in brightness, stability, and entanglement quality are still needed before a field-deployable device becomes practical. Generation rates reached approximately 1,600 entangled pairs per second per milliwatt of pump power, which is comparable to laser-pumped SPDC when normalized against effective phase-matching bandwidth, according to Quantum Zeitgeist.

The team suggests the approach may extend to other non-linear optical processes, indicating that light sources once dismissed as too disordered for quantum experiments could become practical quantum resources.

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