ionization mechanisms
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Author(s):  
Alexander Plumadore ◽  
Allison Harris

Abstract Ionization collisions have important consequences in many physical phenomena, and the mechanism that leads to ionization is not universal. Double differential cross sections (DDCSs) are often used to identify ionization mechanisms because they exhibit features that distinguish close collisions from grazing collisions. In the angular DDCS, a sharp peak indicates ionization through a close binary collision, while a broad angular distribution points to a grazing collision. In the DDCS energy spectrum, electrons ejected through a binary encounter collision result in peak at an energy predicted from momentum conservation. These insights into ionization processes are well-established for plane wave projectiles. However, the recent development of sculpted particle wave packets reopens the question of how ionization occurs for these new particle wave forms. We present theoretical DDCSs for (e,2e) ionization of atomic hydrogen for electron vortex projectiles. Our results predict that the ionization mechanism for vortex projectiles is similar to that of non-vortex projectiles, but that the projectile’s momentum uncertainty causes noticeable changes to the shape and magnitude of the vortex DDCSs. Specifically, there is a broadening and splitting of the angular DDCS peak for vortex projectiles, and an increase in the cross section for high energy ejected electrons.


2020 ◽  
Author(s):  
Amanda Lietz ◽  
◽  
Matthew Hopkins ◽  
Benjamin Yee ◽  
Harry Moffat ◽  
...  

Atoms ◽  
2020 ◽  
Vol 8 (3) ◽  
pp. 38
Author(s):  
Adam Prior ◽  
Henri Bachau ◽  
Lampros A. A. Nikolopoulos

In this work, we develop and apply an ab-initio method to calculate the joint radial- and- angular electron distributions following the interaction of two-electron spherical quantum dots (QD) with intense terahertz pulses of subpicosecond duration. By applying the method to two QDs of different size, we could investigate two particular ionization mechanisms: the direct and the sequential two-photon double ionization. According to our results, the two ionization mechanisms show some similarity in the angular distribution patterns, whereas the corresponding radial distributions are distinctly different, associated with their joint kinetic energy spectrum. We also discuss the time-evolution of the ionization process in the context of the different nature of the interaction of the QD with the external radiation and the electron–electron correlation interactions.


2020 ◽  
Vol 101 (6) ◽  
Author(s):  
S. Mittal ◽  
J. Dubois ◽  
C. Chandre ◽  
T. Uzer

2020 ◽  
Vol 35 (11) ◽  
pp. 2475-2478
Author(s):  
Tyler J. Williams ◽  
Jacob R. Bills ◽  
R. Kenneth Marcus

The versatility of the LS-APGD microplasma is extended beyond elemental and polar molecular species to non-polar, low molecular weight polyaromatic hydrocarbons. Insights into ionization mechanisms are gained, with preliminary LODs determined.


2019 ◽  
Vol 1 (4) ◽  
pp. 045004 ◽  
Author(s):  
Jacques Levaton ◽  
Aloisio Nelmo Klein ◽  
Jayr de Amorim ◽  
Cristiano Binder

2019 ◽  
Vol 881 (1) ◽  
pp. 31 ◽  
Author(s):  
Jason T. Hinkle ◽  
Sylvain Veilleux ◽  
David S. N. Rupke

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