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Probing quantum entanglement in prime quark pairs on the LHC – Physics World


CMS researchers observe quantum entanglement in prime quark–antiquark pairs, revealing new insights into quantum behaviour on the smallest scales


View inside a collider
View inside a collider. (Courtesy: iStock/Dant)

Quantum entanglement is a captivating phenomenon during which the states of two particles develop into intrinsically linked, such {that a} change in a single particle’s state immediately impacts the opposite, whatever the distance between them. This nonlocal connection results in exceptional results, together with the flexibility to affect one particle by manipulating its entangled companion. Famously, Einstein referred to quantum entanglement as “Spooky Motion at a Distance”. Till now, entanglement has been noticed in programs involving atoms, electrons, and photons.

Researchers from the CMS Collaboration at CERN have used knowledge collected in 2016 on the Massive Hadron Collider (LHC) to research quantum entanglement in prime quark–antiquark pairs. In these experiments, protons had been collided at extraordinarily excessive energies (13 TeV), which, as predicted by Quantum Chromodynamics, can result in the manufacturing of prime quark pairs. The highest quark is the heaviest recognized basic particle, and each it and its antiquark counterpart decay nearly immediately after being produced.

On this examine, CMS targeted on occasions the place two leptons (resembling electrons or muons) had been detected with reverse prices and excessive momentum. These leptons originate from the decay of the highest quark and antiquark and carry details about their dad or mum particles, together with their spin. To probe entanglement, the researchers used an observable known as D, which quantifies the correlation between the spins of the highest quark and antiquark. A price of D < -1/3 serves as a transparent signature of quantum entanglement. The CMS end result lies greater than 5 commonplace deviations beneath this threshold, establishing the remark of entanglement in prime quark-antiquark pairs. This provides helpful perception into the behaviour of quantum programs underneath excessive vitality circumstances.

The ATLAS Collaboration beforehand reported the primary remark of entanglement. This measurement was carried out on the degree of secure particles, reconstructed after hadronization. In distinction, the CMS measurement was carried out on the parton degree, which refers back to the behaviour of the unique constructing blocks of particles (quarks and gluons) earlier than they type composite particles. This strategy gives a complementary view of the quantum state.

This groundbreaking work not solely confirms that quantum mechanics holds true on the highest energies and shortest timescales by revealing entanglement within the manufacturing of the heaviest basic particles, but in addition establishes particle colliders just like the LHC as highly effective platforms for exploring quantum data science.

Do you wish to study extra about this matter?

High quark physics in hadron collisions by Wolfgang Wagner (2005)

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