Modification of the uniform electron gas polarizational stopping power due to the interaction of the projectile with new collective modes at moderate and strong coupling
- URL: http://arxiv.org/abs/2505.17229v1
- Date: Thu, 22 May 2025 19:11:05 GMT
- Title: Modification of the uniform electron gas polarizational stopping power due to the interaction of the projectile with new collective modes at moderate and strong coupling
- Authors: S. A. Syzganbayeva, A. V. Filinov, Jesus Ara, A. B. Ashikbayeva, A. Askaruly, L. T. Yerimbetova, M. D. Barriga-Carrasco, Y. V. Arkhipov, I. M. Tkachenko,
- Abstract summary: This paper presents a detailed study of the polarizational stopping power of a homogeneous electron gas in moderate and strong coupling regimes.<n>We develop a robust framework that relies on nine sum rules and other exact relationships to analyze electron-electron interactions and their impact on energy-loss processes.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: This paper presents a detailed study of the polarizational stopping power of a homogeneous electron gas in moderate and strong coupling regimes using the self-consistent version of the method of moments as the key theoretical approach capable of expressing the dynamic characteristics of the system in terms of the static ones, which are the moments. We develop a robust framework that relies on nine sum rules and other exact relationships to analyze electron-electron interactions and their impact on energy-loss processes. We derive an expression for the stopping power that takes into account both quantum statistical effects and electron correlation phenomena. Our results demonstrate significant deviations from classical stopping power predictions, especially under the strong coupling conditions when electron dynamics is highly dependent on collective behavior and a projectile interacts with the system collective modes revealed in Phys. Rev. B 107, 195143 (2023). This work not only advances the theoretical understanding of the homogeneous electron gas but also has implications for practical applications in fields such as plasma physics and materials science.
Related papers
- Multi-Photon Quantum Rabi Models with Center-of-Mass Motion [45.73541813564926]
We introduce a rigorous, second-quantized framework for describing multi-$Lambda$-atoms in a cavity.<n>A key feature of our approach is the systematic application of a Hamiltonian averaging theory to the atomic field operators.<n>A significant finding is the emergence of a particle-particle interaction mediated by ancillary states.
arXiv Detail & Related papers (2025-07-07T09:50:48Z) - Optical lattice quantum simulator of dynamics beyond Born-Oppenheimer [45.29832252085144]
We propose a platform based on ultra-cold fermionic molecules trapped in optical lattices to simulate nonadiabatic effects.<n>We benchmark our proposal by studying the scattering of an electron or a proton against a hydrogen atom.
arXiv Detail & Related papers (2025-03-30T14:46:26Z) - Atom-Field-Medium Interactions I: Graded Influence Actions for $N$ Harmonic Atoms in a Dielectric-Altered Quantum Field [0.0]
We develop the graded influence action formalism citeBehHu10,BH11 to account for the influences of successive sub-layers on the dynamics of the variables of interest.
arXiv Detail & Related papers (2024-08-07T06:33:27Z) - Directional superradiance in a driven ultracold atomic gas in free-space [0.0]
We study a dense ensemble illuminated by a strong coherent drive while interacting via dipole-dipole interactions.
Although the steady-state features some similarities to the reported superradiant to normal non-induced transition, we observe significant qualitative and quantitative differences.
We develop a simple theoretical model that explains the scaling properties by accounting for interaction-equilibrium inhomogeneous effects and spontaneous emission.
arXiv Detail & Related papers (2024-03-22T18:14:44Z) - Relativistic single-electron wavepacket in quantum electromagnetic fields: Quantum coherence, correlations, and the Unruh effect [0.0]
We present a linearized effective theory using a Gaussian wavepacket description of a charged relativistic particle coupled to quantum electromagnetic fields.
We address the issues of decoherence of flying electrons in free space and the impact of Unruh effect on the electrons.
For a single electron accelerated in a uniform electric field, we identify the Unruh effect in the two-point correlators of the deviations from the electron's classical trajectory.
arXiv Detail & Related papers (2024-01-27T13:23:44Z) - Quantum interaction of sub-relativistic aloof electrons with mesoscopic
samples [91.3755431537592]
Relativistic electrons experience very slight wave packet distortion and negligible momentum recoil when interacting with nanometer-sized samples.
Modelling fast electrons as classical point-charges provides extremely accurate theoretical predictions of energy-loss spectra.
arXiv Detail & Related papers (2022-11-14T15:22:37Z) - Driving Force and Nonequilibrium Vibronic Dynamics in Charge Separation
of Strongly Bound Electron-Hole Pairs [59.94347858883343]
We study the dynamics of charge separation in one, two and three-dimensional donor-acceptor networks.
This allows us to identify the precise conditions in which underdamped vibrational motion induces efficient long-range charge separation.
arXiv Detail & Related papers (2022-05-11T17:51:21Z) - Complete Excitation of Discrete Quantum Systems by Single Free Electrons [0.0]
We find a maximum achievable excitation probability of $100%$, which requires specific conditions relating to the coupling strength and the transition symmetry.
Our work reveals the potential of free electrons to control localized excitations and delineates the boundaries of such control.
arXiv Detail & Related papers (2022-02-21T10:22:17Z) - Molecular Interactions Induced by a Static Electric Field in Quantum
Mechanics and Quantum Electrodynamics [68.98428372162448]
We study the interaction between two neutral atoms or molecules subject to a uniform static electric field.
Our focus is to understand the interplay between leading contributions to field-induced electrostatics/polarization and dispersion interactions.
arXiv Detail & Related papers (2021-03-30T14:45:30Z) - Electronic decay process spectra including nuclear degrees of freedom [49.1574468325115]
We explore the ultra-rapid electronic motion spanning attoseconds to femtoseconds, demonstrating that it is equally integral and relevant to the discipline.
The advent of ultrashort attosecond pulse technology has revolutionized our ability to directly observe electronic rearrangements in atoms and molecules.
arXiv Detail & Related papers (2021-02-10T16:51:48Z) - Multi-scale approach for the prediction of atomic scale properties [0.0]
Locality underlies machine-learning schemes that predict quantum mechanical observables.
One of the main shortcomings of these approaches is their inability to capture physical effects.
We show how to build a multi-scale scheme that combines in the same framework local and non-local information.
arXiv Detail & Related papers (2020-08-27T14:01:00Z) - The impact of electron-electron correlation in ultrafast attosecond
single ionization dynamics [38.98439939494304]
We investigate the attosecond ultrafast ionization dynamics of correlated two- or many-electron systems.
We find that different pathways result in a difference in the electronic population of the parent molecular ion.
arXiv Detail & Related papers (2020-02-25T16:00:20Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.