In this article, we are concerned with "finite dimensional fermions,"by which we mean vectors in a finite dimensional complex space embedded in the exterior algebra over itself. These fermions are spinless but possess the characterizing anticommutativity property. We associate invariant complex vector fields on the Lie group Spin(2n + 1) to the fermionic creation and annihilation operators. These vector fields are elements of the complexification of the regular representation of the Lie algebra so(2n+1). As such, they do not satisfy the canonical anticommutation relations; however, once they have been projected onto an appropriate subspace of L2(Spin(2n + 1)), these relations are satisfied. We define a free time evolution of this system of fermions in terms of a symmetric positive-definite quadratic form in the creation-annihilation operators. The realization of fermionic creation and annihilation operators brought by the (invariant) vector fields allows us to interpret this time evolution in terms of a positive self-adjoint operator that is the sum of a second order operator, which generates a stochastic diffusion process, and a first order complex operator, which strongly commutes with the second order operator. A probabilistic interpretation is given in terms of a Feynman-Kac-like formula with respect to the diffusion process associated with the second order operator.

Finite dimensional systems of free fermions and diffusion processes on spin groups / L. Borasi. - In: JOURNAL OF MATHEMATICAL PHYSICS. - ISSN 0022-2488. - 63:3(2022 Mar 18), pp. 032102.1-032102.15. [10.1063/5.0063424]

Finite dimensional systems of free fermions and diffusion processes on spin groups

L. Borasi
2022

Abstract

In this article, we are concerned with "finite dimensional fermions,"by which we mean vectors in a finite dimensional complex space embedded in the exterior algebra over itself. These fermions are spinless but possess the characterizing anticommutativity property. We associate invariant complex vector fields on the Lie group Spin(2n + 1) to the fermionic creation and annihilation operators. These vector fields are elements of the complexification of the regular representation of the Lie algebra so(2n+1). As such, they do not satisfy the canonical anticommutation relations; however, once they have been projected onto an appropriate subspace of L2(Spin(2n + 1)), these relations are satisfied. We define a free time evolution of this system of fermions in terms of a symmetric positive-definite quadratic form in the creation-annihilation operators. The realization of fermionic creation and annihilation operators brought by the (invariant) vector fields allows us to interpret this time evolution in terms of a positive self-adjoint operator that is the sum of a second order operator, which generates a stochastic diffusion process, and a first order complex operator, which strongly commutes with the second order operator. A probabilistic interpretation is given in terms of a Feynman-Kac-like formula with respect to the diffusion process associated with the second order operator.
CAR algebra, Lie algebras, Operator theory, Clifford algebra, Vector fields, Hilbert space, Annihilation operator, Quantum mechanical formalism, Quantum mechanics, Stochastic processes;
Settore MAT/06 - Probabilita' e Statistica Matematica
18-mar-2022
Article (author)
File in questo prodotto:
File Dimensione Formato  
2102.01000.pdf

accesso aperto

Tipologia: Post-print, accepted manuscript ecc. (versione accettata dall'editore)
Dimensione 313.11 kB
Formato Adobe PDF
313.11 kB Adobe PDF Visualizza/Apri
032102_1_online.pdf

accesso riservato

Tipologia: Publisher's version/PDF
Dimensione 4.68 MB
Formato Adobe PDF
4.68 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1019281
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 1
  • ???jsp.display-item.citation.isi??? 1
social impact