Dunkl-Pauli Equation in the Presence of a Magnetic Field
arXiv:2309.14081 · doi:10.1007/s12648-024-03170-y
Abstract
The Pauli equation, an important equation of quantum mechanics, allows us to study the dynamics of spin- particles. The Dunkl derivative, when used instead of the ordinary derivative, leads to obtaining parity-dependent solutions. Motivated by these facts, in this work, we consider a two-dimensional nonrelativistic spin- particle system in the presence of an external magnetic field, and we investigate its parity-dependent dynamics by solving the Pauli equation analytically. Next, we assume the system to be in thermal equilibrium, and we examine various thermal quantities of the system.
17 pages, 8 figures
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- Dunkl-Schrödinger equation with time-dependent harmonic oscillator potential
- Dunkl-Schrodinger Equation in Higher Dimension
- Time-Dependent Dunkl-Schrödinger Equation with an Angular-Dependent Potential
- The Condensation of Ideal Dunkl-Bose Gas in Power-Law Traps
- A Path Integral Treatment of Time-dependent Dunkl Quantum Mechanics
- One-dimensional Dunkl Quantum Mechanics: A Path Integral Approach
- Dunkl-Klein-Gordon Equation in Higher Dimensions
- Time-dependent Dunkl-Pauli Oscillator
- Bounding the Wigner Deformation Parameter in Harmonically Trapped Bose Gases
- Spectral and Thermal Analysis of the Morse Potential within the Dunkl Formalism: Analytical Approximations and Applications
- Exact Solutions of the Schrödinger-Dunkl Equation for a Free Particle in a Finite and Infinite Cylindrical Well
- A Generalization of the Parametric Amplifier with Dunkl Derivative: Spectral and Statistical Properties