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Entanglement Theory Quantum Correlations Quantum Foundations

The Bell states in noncommutative algebraic geometry

arXiv
Authors: Charlie Beil

Year

2013

Paper ID

31318

Status

Preprint

Abstract Read

~2 min

Abstract Words

125

Citations

N/A

Abstract

We introduce new mathematical aspects of the Bell states using matrix factorizations, nonnoetherian singularities, and noncommutative blowups. A matrix factorization of a polynomial p consists of two matrices φ12 such that φ1φ2 = φ2φ1 = p operatorname{id}. Using this notion, we show how the Bell states emerge from the separable product of two mixtures, by defining pure states over complex matrices rather than just the complex numbers. We then show in an idealized algebraic setting that pure states are supported on nonnoetherian singularities. Moreover, we find that the collapse of a Bell state is intimately related to the representation theory of the noncommutative blowup along its singular support. This presents an exchange in geometry: the nonlocal commutative spacetime of the entangled state emerges from an underlying local noncommutative spacetime.

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  • We introduce new mathematical aspects of the Bell states using matrix factorizations, nonnoetherian singularities, and noncommutative blowups.

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