English

Qubit and Fermionic Fock Spaces from Type II Superstring Black Holes

High Energy Physics - Theory 2017-05-24 v2

Abstract

Using Hodge diagram combinatorial data, we study qubit and fermionic Fock spaces from the point of view of type II superstring black holes based on complex compactifications. Concretely, we establish a one-to-one correspondence between qubits, fermionic spaces and extremal black holes in maximally supersymmetric supergravity obtained from type II superstring on complex toroidal and Calabi-Yau compactifications. We interpret the differential forms of the n-dimensional complex toroidal compactification as states of n-qubits encoding information on extremal black hole charges. We show that there are 2^n copies of n-qubit systems which can be split as 2^n=2^{n-1}+2^{n-1}. More precisely, 2^{n-1} copies are associated with even D-brane charges in type IIA superstring and the other 2^{n-1} ones correspond to odd D-brane charges in IIB superstring. This correspondence is generalized to a class of Calabi-Yau manifolds. In connection with black hole charges in type IIA superstring, an n-qubit system has been obtained from a canonical line bundle of n factors of one dimensional projective space \mathbb{CP}^1.

Keywords

Cite

@article{arxiv.1604.03998,
  title  = {Qubit and Fermionic Fock Spaces from Type II Superstring Black Holes},
  author = {A. Belhaj and M. Bensed and Z. Benslimane and M. B. Sedra and A. Segui},
  journal= {arXiv preprint arXiv:1604.03998},
  year   = {2017}
}

Comments

21 pages, 2 figures, latex. Accepted for publication in International Journal of Geometric Methods in Modern Physics (2017)

R2 v1 2026-06-22T13:31:58.028Z