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Einstein’s “spooky action” just survived one of physics’ most extreme tests - ScienceDaily
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Einstein’s “spooky action” just survived one of physics’ most extreme tests - ScienceDaily

Science News from research organizations Einstein’s “spooky action” just survived one of physics’ most extreme tests Date: September 20, 2026 Source: University of Oxford Summary: Physicists have detected strong evidence that heavy, fleeting Z bosons can become quantum entangled during Higgs boson decays at CERN’s Large Hadron Collider. The result shows that Einstein’s “spooky action at a distance” survives even under some of the most extreme conditions ever created in a laboratory. Share: Facebook Twitter Pinterest LinkedIN Email FULL STORY Einstein’s “spooky action at a distance” has now been seen at astonishing energies inside some of the most violent particle collisions on Earth. Credit: CERN Physicists at the University of Oxford have helped demonstrate that one of quantum physics' strangest phenomena, quantum entanglement, can persist even among some of the heaviest and shortest-lived particles ever produced. The finding, made with CERN's powerful Large Hadron Collider, has been published in Physical Review Letters. Quantum entanglement occurs when two particles share properties in such a way that measurements of one can reveal information about the other, even when the particles are separated. The connection is one of the most counterintuitive features of quantum mechanics and has challenged physicists' understanding of reality for decades. Albert Einstein famously called entanglement "spooky action at a distance," and scientists have previously observed the effect in systems involving photons, electrons and trapped ions. Entanglement has also become central to several emerging technologies, including quantum computers, ultra-secure quantum communication networks and advanced sensors. In quantum computing, for example, entanglement allows multiple qubits to be manipulated together rather than one at a time, making it possible to carry out multiple calculations simultaneously. Testing Quantum Entanglement at Extreme Energies What remained less clear was whethe

Sep 20, 2026

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Tel Aviv University Measures Entanglement-Breaking Indexquantum-computing

Tel Aviv University Measures Entanglement-Breaking Index

Determining the entanglement-breaking index of a quantum channel, essentially quantifying how quickly it destroys all quantum correlations, has remained unsolved until now. For the first time, work at Tel Aviv University both measures and controls this key integer using a certified thermal collision feedback loop on programmable hardware. Measurement and control of an entanglement-breaking index in a quantum channel are achieved through use of programmable hardware. This represents a sharp advance as it establishes a new technique for understanding how information deteriorates during transmission through these channels; this is vital for developing dependable future quantum technologies. The team precisely manipulated bath polarisation, the state of thermal energy surrounding qubits, to achieve these results, opening possibilities to refine existing quantum communication methods and improve data accuracy. Work at Tel Aviv University achieves measurement and control of an entanglement-breaking index in a quantum channel using programmable hardware; this integer defines how many repetitions of a process will destroy all linked states between particles, imagine repeatedly copying a coded message until it becomes unreadable. The breakthrough establishes a new method for understanding information loss during transmission, key for building reliable future quantum technologies. The team employed a technique called thermal collision feedback loop to precisely manage noise by introducing controlled disturbances, similar to carefully cancelling out unwanted hum from an audio signal. They demonstrated precise manipulation of bath polarisation, the state of thermal energy surrounding qubits, and developed certified measurements with margins ranging from 0.025 to 0.109. Certified signal enhancement via coherent Bloch vector tilting defines low-noise boundaries Signal strength from static measurements increased threefold and achieved a verified measurement of 8.

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