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Effective Caldirola-Kanai Model for Accelerating Twisted Dirac States in Nonuniform Axial Fields

arXiv
Authors: N. V. Filina, S. S. Baturin

Year

2026

Paper ID

805

Status

Preprint

Abstract Read

~2 min

Abstract Words

184

Citations

0

Abstract

We study relativistic twisted (orbital-angular-momentum) states of a massive charged particle propagating through an axially symmetric, longitudinally inhomogeneous solenoid field and a co-directed accelerating or decelerating electric field. Starting from the Dirac equation and using controlled spinless and paraxial approximations, we show that the transverse envelope obeys an effective nonstationary Schrödinger equation governed by a Caldirola--Kanai Hamiltonian. The longitudinal energy gain or loss encoded in f(z)=\[E0-V(z)\]2-m2 generates an effective gain or damping rate widetildeγ(z)=partialz f(z)/[2f(z)] and a z-dependent oscillator frequency widetildeω(z)=p0Ω(z)/sqrt{f(z)}. Exploiting the Ermakov mapping (unitary equivalence of Caldirola--Kanai systems), we obtain a closed-form propagated twisted wave function by transforming the stationary Landau basis. The transverse evolution is controlled by a single scaling function b(z) that satisfies a generalized Ermakov--Pinney equation with coefficients determined by Ez(z) and Bz(z). In the limiting cases of uniform acceleration with Bz=0 and of solenoid focusing with negligible acceleration, our solution reduces to previously known analytic results, providing a direct bridge to established models.

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  • We study relativistic twisted (orbital-angular-momentum) states of a massive charged particle propagating through an axially symmetric, longitudinally inhomogeneous solenoid...

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