Umeå University's logo

umu.sePublications
Change search
Link to record
Permanent link

Direct link
Publications (9 of 9) Show all publications
Ekman, R. (2022). Reduction of order and transseries structure of radiation reaction. Physical Review D: covering particles, fields, gravitation, and cosmology, 105(5), Article ID 056016.
Open this publication in new window or tab >>Reduction of order and transseries structure of radiation reaction
2022 (English)In: Physical Review D: covering particles, fields, gravitation, and cosmology, ISSN 2470-0010, E-ISSN 2470-0029, Vol. 105, no 5, article id 056016Article in journal (Refereed) Published
Abstract [en]

The Landau-Lifshitz equation is obtained from the Lorentz-Abraham-Dirac equation through "reduction of order."It is the first in a divergent series of approximations that, after resummation, eliminate runaway solutions. Using Borel plane and transseries analysis we explain why this is, and show that a nonperturbative formulation of reduction of order can retain runaway solutions. We also apply transseries analysis to solutions of the Lorentz-Abraham-Dirac equation, essentially treating them as expansions in both time and a coupling. Our results illustrate some aspects of such expansions under changes of variables and limits.

Place, publisher, year, edition, pages
American Physical Society, 2022
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:umu:diva-194332 (URN)10.1103/PhysRevD.105.056016 (DOI)000784269600003 ()2-s2.0-85128313718 (Scopus ID)
Available from: 2022-05-04 Created: 2022-05-04 Last updated: 2023-09-05Bibliographically approved
Ekman, R., Al-Naseri, H., Zamanian, J. & Brodin, G. (2021). Short-scale quantum kinetic theory including spin-orbit interactions. European Physical Journal D: Atomic, Molecular and Optical Physics, 75(1), Article ID 29.
Open this publication in new window or tab >>Short-scale quantum kinetic theory including spin-orbit interactions
2021 (English)In: European Physical Journal D: Atomic, Molecular and Optical Physics, ISSN 1434-6060, E-ISSN 1434-6079, Vol. 75, no 1, article id 29Article in journal (Refereed) Published
Abstract [en]

We present a quantum kinetic theory for spin-1/2 particles, including the spin-orbit interaction, retaining particle dispersive effects to all orders in ℏ, based on a gauge-invariant Wigner transformation. Compared to previous works, the spin-orbit interaction leads to a new term in the kinetic equation, containing both the electric and magnetic fields. Like other models with spin-orbit interactions, our model features "hidden momentum". As an example application, we calculate the dispersion relation for linear electrostatic waves in a magnetized plasma, and electromagnetic waves in a unmagnetized plasma. In the former case, we compare the Landau damping due to spin-orbit interactions to that due to the free current. We also discuss our model in relation to previously published works. 

Place, publisher, year, edition, pages
Springer, 2021
National Category
Fusion, Plasma and Space Physics
Research subject
Theoretical Physics
Identifiers
urn:nbn:se:umu:diva-162462 (URN)10.1140/epjd/s10053-020-00021-3 (DOI)000612852200013 ()2-s2.0-85099929253 (Scopus ID)
Funder
Swedish Research Council, 2016-03806Knut and Alice Wallenberg Foundation
Note

Previously included in thesis in manuscript form. 

Manuscript available at https://arxiv.org/abs/1908.05131

Available from: 2019-08-20 Created: 2019-08-20 Last updated: 2023-03-22Bibliographically approved
Brodin, G., Ekman, R. & Zamanian, J. (2019). Do hydrodynamic models based on time-independent density functional theory misestimate exchange effects?: Comparison with kinetic theory for electrostatic waves. Physics of Plasmas, 26(9), Article ID 092113.
Open this publication in new window or tab >>Do hydrodynamic models based on time-independent density functional theory misestimate exchange effects?: Comparison with kinetic theory for electrostatic waves
2019 (English)In: Physics of Plasmas, ISSN 1070-664X, E-ISSN 1089-7674, Vol. 26, no 9, article id 092113Article in journal (Refereed) Published
Abstract [en]

We have extended previous quantum kinetic results to compute the exchange correction to the electrostatic electron susceptibility for arbitrary frequencies and wavenumbers in the low temperature limit. This has allowed us to make a general comparison with a much used hydrodynamic expression, based on density functional theory, for exchange effects. For low phase velocities, as for ion-acoustic waves, wave-particle interaction leads to a strong enhancement of the exchange correction and the hydrodynamic result is smaller by an order of magnitude. The hydrodynamic expression gives a useful approximation when the phase velocity is 2.5 times the Fermi velocity. If this condition is not fulfilled, the hydrodynamical theory gives misleading results. We discuss the implications of our results for the model choice for quantum plasmas, especially regarding particle dispersive effects.

Place, publisher, year, edition, pages
American Institute of Physics (AIP), 2019
National Category
Fusion, Plasma and Space Physics
Research subject
Theoretical Physics
Identifiers
urn:nbn:se:umu:diva-162460 (URN)10.1063/1.5104339 (DOI)000489060300028 ()2-s2.0-85072777706 (Scopus ID)
Note

Originally included in thesis in manuscript form with title Do hydrodynamic models misestimate exchange effects? Comparison with kinetic theory for electrostatic waves.

Available from: 2019-08-20 Created: 2019-08-20 Last updated: 2019-12-17Bibliographically approved
Ekman, R. (2019). Quantum Kinetic Theory for Plasmas: spin, exchange, and particle dispersive effects. (Doctoral dissertation). Umeå: Umeå universitet
Open this publication in new window or tab >>Quantum Kinetic Theory for Plasmas: spin, exchange, and particle dispersive effects
2019 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

This thesis is about developing and studying quantum mechanical models of plasmas. Quantum effects can be important at high densities, at low temperatures, and in strong electromagnetic fields, in various laboratory and astrophysical systems. The focus is on the electron spin, the intrinsic magnetic moment; exchange interactions, a purely quantum mechanical effect arising from particles being indistinguishable; and particle dispersive effects, essentially the Heisenberg uncertainty principle. The focus is on using phase-space formulations of quantum mechanics, namely Wigner and -functions. These methods allow carrying over techniques from classical plasma physics and identifying quantum as opposed to classical behavior.

Two new kinetic models including the spin are presented, one fully relativistic and to first order in ħ, and one semi-relativistic but to all orders in ħ. Among other example calculations, for the former, conservation laws for energy, momentum, and angular momentum are derived and related to “hidden momentum” and the Abraham-Minkowski dilemma. Both models are discussed in the context of the existing literature.

A kinetic model of exchange interactions, formally similar to a collision operator, is compared to a widely used fluid description based on density functional theory, for the case of electrostatic waves. The models are found to disagree significantly.

A new, non-linear, wave damping mechanism is shown to arise from particle dispersive effects. It can be interpreted as the simultaneous absorption or emission of multiple wave quanta. This multi-plasmon damping is of particular interest for highly degenerate electrons, where it can occur on time scales comparable to or shorter than that of linear Landau damping.

Place, publisher, year, edition, pages
Umeå: Umeå universitet, 2019. p. 47
National Category
Fusion, Plasma and Space Physics
Research subject
Theoretical Physics
Identifiers
urn:nbn:se:umu:diva-162465 (URN)978-91-7855-102-6 (ISBN)
Public defence
2019-09-13, N 420, Naturvetarhuset, Umeå, 10:00 (English)
Opponent
Supervisors
Available from: 2019-08-23 Created: 2019-08-20 Last updated: 2019-08-21Bibliographically approved
Ekman, R., Al-Naseri, H., Zamanian, J. & Brodin, G. (2019). Relativistic kinetic theory for spin-1/2 particles: Conservation laws, thermodynamics, and linear waves. Physical Review E. Statistical, Nonlinear, and Soft Matter Physics: Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics, 100(2), Article ID 023201.
Open this publication in new window or tab >>Relativistic kinetic theory for spin-1/2 particles: Conservation laws, thermodynamics, and linear waves
2019 (English)In: Physical Review E. Statistical, Nonlinear, and Soft Matter Physics: Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics, ISSN 1063-651X, E-ISSN 1095-3787, Vol. 100, no 2, article id 023201Article in journal (Refereed) Published
Abstract [en]

We study a recently derived fully relativistic kinetic model for spin-1/2 particles. First, the full set of conservation laws for energy, momentum, and angular momentum are given together with an expression for the (nonsymmetric) stress-energy tensor. Next, the thermodynamic equilibrium distribution is given in different limiting cases. Furthermore, we address the analytical complexity that arises when the spin and momentum eigenfunctions are coupled in linear theory by calculating the linear dispersion relation for such a case. Finally, we discuss the model and give some context by comparing with potentially relevant phenomena that are not included, such as radiation reaction and vacuum polarization.

National Category
Fusion, Plasma and Space Physics
Research subject
Theoretical Physics
Identifiers
urn:nbn:se:umu:diva-162463 (URN)10.1103/PhysRevE.100.023201 (DOI)000479192700004 ()31574677 (PubMedID)2-s2.0-85070558937 (Scopus ID)
Available from: 2019-08-20 Created: 2019-08-20 Last updated: 2023-05-08Bibliographically approved
Brodin, G., Ekman, R. & Zamanian, J. (2018). Nonlinear wave damping due to multi-plasmon resonances. Plasma Physics and Controlled Fusion, 60(2), Article ID 025009.
Open this publication in new window or tab >>Nonlinear wave damping due to multi-plasmon resonances
2018 (English)In: Plasma Physics and Controlled Fusion, ISSN 0741-3335, E-ISSN 1361-6587, Vol. 60, no 2, article id 025009Article in journal (Refereed) Published
Abstract [en]

For short wavelengths, it is well known that the linearized Wigner-Moyal equation predicts wave damping due to wave-particle interaction, where the resonant velocity shifted from the phase velocity by a velocity v(q) = hk/2m. Here h is the reduced Planck constant, k is the wavenumber and m is the electron mass. Going beyond linear theory, we find additional resonances with velocity shifts nv(q), n= 2,3, ..., giving rise to a new wave-damping mechanism that we term multi-plasmon damping, as it can be seen as the simultaneous absorption (or emission) of multiple plasmon quanta. Naturally this wave damping is not present in classical plasmas. For a temperature well below the Fermi temperature, if the linear (n = 1) resonant velocity is outside the Fermi sphere, the number of linearly resonant particles is exponentially small, while the multi-plasmon resonances can be located in the bulk of the distribution. We derive sets of evolution equations for the case of two-plasmon and three-plasmon resonances for Langmuir waves in the simplest case of a fully degenerate plasma. By solving these equations numerically for a range of wave-numbers we find the corresponding damping rates, and we compare them to results from linear theory to estimate the applicability. Finally, we discuss the effects due to a finite temperature.

Place, publisher, year, edition, pages
Institute of Physics Publishing (IOPP), 2018
Keywords
wave-particle interaction, Wigner equation, Langmuir waves, nonlinear wave damping
National Category
Fusion, Plasma and Space Physics
Identifiers
urn:nbn:se:umu:diva-143622 (URN)10.1088/1361-6587/aa979d (DOI)000418145500002 ()2-s2.0-85040720570 (Scopus ID)
Funder
Swedish Research Council, 2012-3320
Available from: 2018-01-30 Created: 2018-01-30 Last updated: 2023-03-24Bibliographically approved
Brodin, G., Ekman, R. & Zamanian, J. (2017). Quantum kinetic theories in degenerate plasmas. Plasma Physics and Controlled Fusion, 59(1), Article ID 014043.
Open this publication in new window or tab >>Quantum kinetic theories in degenerate plasmas
2017 (English)In: Plasma Physics and Controlled Fusion, ISSN 0741-3335, E-ISSN 1361-6587, Vol. 59, no 1, article id 014043Article in journal (Refereed) Published
Abstract [en]

In this review we give an overview of the recent work on quantum kinetic theories of plasmas. We focus, in particular, on the case where the electrons are fully degenerate. For such systems, perturbation methods using the distribution function can be problematic. Instead we present a model that considers the dynamics of the Fermi surface. The advantage of this model is that, even though the value of the distribution function can be greatly perturbed outside the equilibrium Fermi surface, deformation of the Fermi surface is small up to very large amplitudes. Next, we investigate the short-scale dynamics for which the Wigner-Moyal equation replaces the Vlasov equation. In particular, we study wave-particle interaction, and deduce that new types of wave damping can occur due to the simultaneous absorption (or emission) of multiple wave quanta. Finally, we consider exchange effects within a quantum kinetic formalism to find a model that is more accurate than those using exchange potentials from density functional theory. We deduce the exchange corrections to the dispersion relations for Langmuir and ion-acoustic waves. In comparison to results based on exchange potentials deduced from density functional theory we find that the latter models are reasonably accurate for Langmuir waves, but rather inaccurate for ion acoustic waves.

Place, publisher, year, edition, pages
Institute of Physics Publishing (IOPP), 2017
Keywords
kinetic theory, wave-particle interaction, Fermi surface dynamics, Wigner-Moyal equation, exchange effects
National Category
Fusion, Plasma and Space Physics
Identifiers
urn:nbn:se:umu:diva-129703 (URN)10.1088/0741-3335/59/1/014043 (DOI)000390238700003 ()2-s2.0-85006049156 (Scopus ID)
Available from: 2017-01-10 Created: 2017-01-09 Last updated: 2023-03-24Bibliographically approved
Ekman, R., Asenjo, F. A. & Zamanian, J. (2017). Relativistic kinetic equation for spin-1/2 particles in the long-scale-length approximation. Physical review. E, 96(2), Article ID 023207.
Open this publication in new window or tab >>Relativistic kinetic equation for spin-1/2 particles in the long-scale-length approximation
2017 (English)In: Physical review. E, ISSN 2470-0045, E-ISSN 2470-0053, Vol. 96, no 2, article id 023207Article in journal (Refereed) Published
Abstract [en]

In this paper, we derive a fully relativistic kinetic theory for spin-1/2 particles and its coupling to Maxwell's equations, valid in the long-scale-length limit, where the fields vary on a scale much longer than the localization of the particles; we work to first order in (h) over bar. Our starting point is a Foldy-Wouthuysen (FW) transformation, applicable to this regime, of the Dirac Hamiltonian. We derive the corresponding evolution equation for the Wigner quasidistribution in an external electromagnetic field. Using a Lagrangian method we find expressions for the charge and current densities, expressed as free and bound parts. It is furthermore found that the velocity is nontrivially related to the momentum variable, with the difference depending on the spin and the external electromagnetic fields. This fact that has previously been discussed as "hidden momentum" and is due to that the FW transformation maps pointlike particles to particle clouds for which the prescription of minimal coupling is incorrect, as they have multipole moments. We express energy and momentum conservation for the system of particles and the electromagnetic field, and discuss our results in the context of the Abraham-Minkowski dilemma.

Place, publisher, year, edition, pages
American Physical Society, 2017
National Category
Fusion, Plasma and Space Physics
Identifiers
urn:nbn:se:umu:diva-139142 (URN)10.1103/PhysRevE.96.023207 (DOI)000408118100012 ()2-s2.0-85028894137 (Scopus ID)
Available from: 2017-10-03 Created: 2017-10-03 Last updated: 2023-03-24Bibliographically approved
Ekman, R., Zamanian, J. & Brodin, G. (2015). Exchange corrections in a low-temperature plasma. Physical Review E. Statistical, Nonlinear, and Soft Matter Physics, 92(1), Article ID 013104.
Open this publication in new window or tab >>Exchange corrections in a low-temperature plasma
2015 (English)In: Physical Review E. Statistical, Nonlinear, and Soft Matter Physics, ISSN 1539-3755, E-ISSN 1550-2376, Vol. 92, no 1, article id 013104Article in journal (Refereed) Published
Abstract [en]

We have studied the exchange corrections to linear electrostatic wave propagation in a plasma using a quantum kinetic formalism. Specifically, we have considered the zero-temperature limit. In order to simplify the calculations we have focused on the long-wavelength limit, i.e., wavelengths much longer than the de Broglie wavelength. For the case of ion-acoustic waves we have calculated the exchange correction both to the damping rate and the real part of the frequency. For Langmuir waves the frequency shift due to exchange effects is found. Our results are compared with the frequency shifts deduced from commonly used exchange potentials which are computed from density-functional theory.

Place, publisher, year, edition, pages
American Physical Society, 2015
National Category
Physical Sciences
Identifiers
urn:nbn:se:umu:diva-106781 (URN)10.1103/PhysRevE.92.013104 (DOI)000357863500006 ()2-s2.0-84938788629 (Scopus ID)
Available from: 2015-08-14 Created: 2015-08-07 Last updated: 2023-03-23Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-0428-6689

Search in DiVA

Show all publications