Gauge invariance from quantum information principles
Claudia N\'u\~nez, Miguel Pardina, Manuel Asorey, Jos\'e Ignacio Latorre, Alba Cervera-Lierta

TL;DR
This paper explores how the combination of entanglement and magic quantum properties constrains fundamental interactions, suggesting that gauge invariance emerges from principles of quantum information.
Contribution
It demonstrates that imposing maximal entanglement and minimal magic uniquely constrains gauge and diffeomorphism-invariant interactions.
Findings
Maximal entanglement alone does not ensure gauge invariance.
Adding minimal magic singles out gauge-invariant interactions.
Nature favors high entanglement with limited non-Cliffordness.
Abstract
Entanglement is a hallmark of quantum theory, yet it alone does not capture the full extent of quantum complexity: some highly entangled states can still be classically simulated. Non-classical behavior also requires magic, the non-Clifford component that enables universal quantum computation. Here, we investigate whether the interplay between entanglement and magic constrains the structure of fundamental interactions. We study gluon-gluon and graviton-graviton scattering at tree level, explicitly breaking gauge and general covariance by modifying the quartic vertices and analyzing the resulting generation of entanglement and magic. We find that imposing maximal entanglement (MaxEnt) alone does not uniquely recover gauge-invariant and diffeomorphism-invariant interactions, but adding the condition of minimal, but nonzero, magic singles it out. Our results indicate that nature favors…
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Taxonomy
TopicsQuantum Mechanics and Applications · Quantum many-body systems · Algebraic and Geometric Analysis
