Spectral and thermodynamic properties of supersymmetric quantum systems with self-adjoint deformed momentum

Authors

  • J. A. Oke Ecole Doctorale des Sciences, Technologies, Ingénierie et Mathématiques (ED-STIM), Université Nationale des Sciences, Technologies, Ingénierie et Mathématiques (UNSTIM), Bénin https://orcid.org/0009-0002-1640-7780
  • F. A. Dossa Laboratoire de Physique et Applications (LPA) du Centre Universitaire de Natitingou, Université Nationale des Sciences, Technologies, Ingénierie et Mathématiques (UNSTIM) Abomey, Bénin; Département de Physique, Faculté des Sciences et Techniques (FAST/UNSTIM), Bénin https://orcid.org/0000-0002-2694-4144

DOI:

https://doi.org/10.5488/cmp.29.23704

Keywords:

supersymmetry, self-adjoints momentum, thermodynamic properties

Abstract

We establish a rigorous framework for quantum systems with geometric deformations by constructing a strictly self-adjoint deformed momentum operator through the generalized extended momentum operator (GEMO) formalism. Unlike previous approaches relying on boundary-condition hermiticity, our method ensures intrinsic self-adjointness for both linear (μ(x)=αx) and quadratic (μ(x)=αx 2) deformations within a unified non-Hermitian supersymmetric factorization scheme. This yields exact analytical spectra while revealing hidden su (1, 1) symmetry structures. Crucially, we provide the first complete thermodynamic characterization of such systems by analytically evaluating the partition function via the Euler-Maclaurin approximation. Geometric deformation fundamentally reshapes the density of states ρ(E), producing distinct thermal signatures: a divergent heat capacity peak for linear deformation due to state accumulation near a maximal energy, and a saturation C/kB → 0.6 (below the Dulong-Petit limit) for quadratic deformation. These results establish geometric deformation as a tunable parameter for engineering quantum thermodynamic responses in curved nanostructures.

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Published

2026-06-29

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How to Cite

[1]
J. A. Oke and F. A. Dossa, “Spectral and thermodynamic properties of supersymmetric quantum systems with self-adjoint deformed momentum”, Condens. Matter Phys., vol. 29, no. 2, p. 23704, Jun. 2026, doi: 10.5488/cmp.29.23704.

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