Cosmic string influence on a 2D hydrogen atom and its relationship with
the Rytova-Keldysh logarithmic approximation in semiconductors
- URL: http://arxiv.org/abs/2311.14144v1
- Date: Thu, 23 Nov 2023 18:31:31 GMT
- Title: Cosmic string influence on a 2D hydrogen atom and its relationship with
the Rytova-Keldysh logarithmic approximation in semiconductors
- Authors: Frankbelson dos S. Azevedo, Izael A. Lima, Gallileu Genesis, Rodolfo
Casana, Edilberto O. Silva
- Abstract summary: A two-dimensional hydrogen atom offers a promising alternative for describing the quantum interaction between an electron and a proton in the presence of a straight cosmic string.
We calculate the eigenenergies, probability distribution function, and expected values for the hydrogen atom with logarithmic potential under the influence of the topological defect.
Our model leads to an interesting analogy with excitons in a two-dimensional monolayer semiconductor located within a specific semiconductor region.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: A two-dimensional hydrogen atom offers a promising alternative for describing
the quantum interaction between an electron and a proton in the presence of a
straight cosmic string. Reducing the hydrogen atom to two dimensions enhances
its suited to capture the cylindrical/conical symmetry associated with the
cosmic string, providing a more appropriate description of the physical system.
After solving Schr\"dinger's equation, we calculate the eigenenergies,
probability distribution function, and expected values for the hydrogen atom
with logarithmic potential under the influence of the topological defect. The
calculations for the 2D hydrogen atom are performed for the first time using
the Finite Difference Method. The results are presented through graphics,
tables, and diagrams to elucidate the system's physical properties. We have
verified that our calculations agree with a linear variational method result.
Our model leads to an interesting analogy with excitons in a two-dimensional
monolayer semiconductor located within a specific semiconductor region. To
elucidate this analogy, we present and discuss some interaction potentials and
their exciton eigenstates by comparing them with the results from the
literature.
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