Entanglement Entropy from String Field Theory (and a Higher-Spin Example)
Dimitri Polyakov

TL;DR
This paper calculates the entanglement entropy of higher-spin modes in open string field theory, revealing how string excitations contribute to quantum entanglement and providing a new computational framework for such systems.
Contribution
It introduces a novel class of solutions in string field theory that describe entanglement between higher-spin modes, extending the understanding of quantum entanglement in string theory.
Findings
Derived explicit formulas for entanglement entropy involving higher-spin modes.
Expressed entanglement entropy in terms of series with partition numbers and zeta functions.
Generalized results to subsystems of specific spins and dimensions.
Abstract
We study the new class of solutions in linearized open string field theory (OSFT) involving higher-spin modes. Unlike the elementary OSFT solutions (on-shell vertex operators) that, acting on a vacuum, define wavefunctions of pure states (e.g. a tachyon), the solutions that we describe correspond to the reduced density matrices which eigenvalues describe the entanglement between higher-spin modes with different spin values. We compute the entanglement entropy on these OSFT solutions, and the answer is expressed in terms of converging series in inverse weighted partition numbers. In the case of -dimensional bosonic string theory, the entanglement entropy of spin subsystem and the system of all the spin values is given by , where is the…
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Taxonomy
TopicsQuantum many-body systems · Black Holes and Theoretical Physics · Physics of Superconductivity and Magnetism
