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Newsletter May 2024

Dear colleagues and friends of the HI-Jena,

we are glad to provide you with the May 2024 issue of the newsletter of the Helmholtz Institute Jena.
Below you find informations and news about recent activities of our institute.

Kind Regards,
Helmholtz Institute Jena

HILITE Penning trap passes commissioning

The interaction of intense laser light with atomic matter was a widely explored field in the 2000s. However, the reaction products were a mixture of different charge states, and the ionization channels could not be distinguished from each other very well. In order to be able to separate the individual ionization events from each other, the HILITE Penning trap was built. It can provide ions of any specific element and charge state as a target. The setup is designed in a transportable fashion to be operated at any laser facility in order to cover a wide range of laser parameters – especially concerning laser intensity and laser wavelength.

Recent developments at the Helmholtz Institute Jena have boosted the performance of the experiment. Ion clouds with several 10,000 ions can be formed in the ion trap. To allow efficient laser experiments with a huge overlap of the laser pulses and the ion cloud, a high ion density is crucial. This is ensured by fast ion cooling to compress the ions to a small volume. The cooling of the ion cloud is done with the well understood and elaborated technique of resistive ion cooling. In recent publications, the team showed fast ion cooling for large ion clouds (see Figure 1a). The fast decay in the beginning is caused by resistive ion cooling where the ions lose 99.99% of their kinetic energy within roughly 50 ms [1]. This will allow for an experiment cycle time of less than 1 second which is comparable of the typical cycle time of a high-power laser. Furthermore, using the uncommon approach of a dual-hot-end resonator, it is possible to disentangle resistive ion cooling from the effect of ion dephasing. This increases the understanding of the processes inside the ion cloud and allows to maximise the harmonicity of the ion trap with a large ion ensemble [2]. After cooling, the FWHM of the ion distribution is found to be 600 µm as depicted in Figure 1b. Consequently, 95% of the stored ions have a distance less than 112 µm from the trap centre [1]. The corresponding ion density is about 10.000 mm-3 which is sufficiently high to ensure a high number of interacting ions in a laser experiment.

Within the next months, the HILITE Penning trap setup will be prepared to be combined with the JETI200 laser, also located at the Helmholtz Institute Jena. In the experiments, ionisation cross sections will be measured for different ion species of carbon, nitrogen, oxygen, and neon. The used intensities will be in the relativistic regime. Due to the ionic target, the electric field of the weakest bound electron will be close to the laser’s electric field and the experimental results can be compared with theory which describes tunnel ionisation at relativistic electron energies. In addition, it is foreseen to detect photons in the x-ray regime which are produced in the sense of high-harmonic generation.

References:

[1] M. Kiffer, S. Ringleb, Th. Stöhlker and M. Vogel, Phys. Rev. A 109, 033102 (2024).
[2] S. Ringleb, M. Kiffer, Th. Stöhlker and M. Vogel, Eur. Phys. J. Plus (accepted for publication).

News and Announcements

Short-wave XUV imaging: High funding amount for new research group in Jena

In a new cooperation between the Helmholtz Institute Jena, a branch of GSI Helmholtzzentrum für Schwerionenforschung in Darmstadt, and Friedrich Schiller University…
Weiterlesen »

ERC Advanced Grant for Thomas Stöhlker

Million-euro funding for experiments with storage rings at GSI/FAIR on the way to the nuclear clock
Weiterlesen »

Recently finished theses

Liu F. Strong field dynamic in laser-induced processes . Friedrich-Schiller-Universität Jena; 2024 Sep..     [File] 
Liu F. Strong field dynamic in laser-induced processes . Friedrich-Schiller-Universität Jena; 2024 Sep..     [File] 
Sikorski P. Signatures of radiation reaction in electron-beam laser collisions . Friedrich-Schiller-Universität Jena; Physikalisch-Astronomische Fakultät; 2024 Jul..
Wiesner F. Spektroskopische Kohärenztomographie im extrem ultravioletten Spektralbereich . Friedrich-Schiller-Universität Jena; 2024 May.     [File] 
Wiesner F. Spektroskopische Kohärenztomographie im extrem ultravioletten Spektralbereich . Friedrich-Schiller-Universität Jena; 2024 May.     [File] 
Almassarani M. Sub-picosecond dynamics during relativistic laser-plasma interaction . Friedrich-Schiller-Universität Jena; 2024 May.      [DOI]      [File] 
Almassarani M. Sub-picosecond dynamics during relativistic laser-plasma interaction . Friedrich-Schiller-Universität Jena; 2024 May.      [DOI]      [File] 

Recent publications

Azamoum Y, Becker GA, Keppler S, Duchateau G, Skupin S, Grech M, Catoire F, Hell S, Tamer I, Hornung M, Hellwing M, Kessler A, Schorcht F, Kaluza MC. Optical probing of ultrafast laser-induced solid-to-overdense-plasma transitions. Light. 2024 May; 13(1):109.      [DOI]      [File] 
Azamoum Y, Becker GA, Keppler S, Duchateau G, Skupin S, Grech M, Catoire F, Hell S, Tamer I, Hornung M, Hellwing M, Kessler A, Schorcht F, Kaluza MC. Optical probing of ultrafast laser-induced solid-to-overdense-plasma transitions. Light. 2024 May; 13(1):109.      [DOI]      [File] 
Xu L, Fernández FM, Jiao LG, Montgomery HE, Ho YK, Fritzsche S. Revisiting the energy spectrum of the radial screened Coulomb potential. Physica scripta. 2024 May; 99(6):065404.      [DOI]      [File] 
Xu L, Fernández FM, Jiao LG, Montgomery HE, Ho YK, Fritzsche S. Revisiting the energy spectrum of the radial screened Coulomb potential. Physica scripta. 2024 May; 99(6):065404.      [DOI]      [File] 
Ma Y, Cardarelli JA, Campbell PT, Fourmaux S, Fitzgarrald R, Balcazar MD, Antoine AF, Beier NF, Qian Q, Hussein AE, Kettle B, Klein SR, Krushelnick K, Li YF, Mangles SPD, Sarri G, Seipt D, Senthilkumaran V, Streeter MJV, Willingale L, Thomas AGR. Single-Shot Diagnosis of Electron Energy Evolution via Streaked Betatron X Rays in a Curved Laser Wakefield Accelerator. Physical review letters. 2024 May; 132(22):225001.      [DOI]      [File] 
Ma Y, Cardarelli JA, Campbell PT, Fourmaux S, Fitzgarrald R, Balcazar MD, Antoine AF, Beier NF, Qian Q, Hussein AE, Kettle B, Klein SR, Krushelnick K, Li YF, Mangles SPD, Sarri G, Seipt D, Senthilkumaran V, Streeter MJV, Willingale L, Thomas AGR. Single-Shot Diagnosis of Electron Energy Evolution via Streaked Betatron X Rays in a Curved Laser Wakefield Accelerator. Physical review letters. 2024 May; 132(22):225001.      [DOI]      [File] 
Herdrich MO, Hengstler D, Allgeier S, Friedrich M, Fleischmann A, Enss C, Bernitt S, Morgenroth T, Trotsenko S, Schuch R, Stöhlker T. Application of a metallic-magnetic calorimeter for high-resolution x-ray spectroscopy of Fe at an EBIT. Journal of physics / B. 2024 Apr.; 57(8):085001 -.      [DOI]      [File] 
Yan T, Jiao LG, Liu A, Wang YC, Montgomery HE, Ho YK, Fritzsche S. Bound state energies and critical bound region in the semiclassical dense hydrogen plasmas. Physics of plasmas. 2024 Apr.; 31(4):042110.      [DOI]      [File] 
Major Z, Eisenbarth U, Zielbauer B, Brabetz C, Ohland JB, Zobus Y, Röder S, Reemts D, Kunzer S, Götte S, Neidherr D, Hornung J, Kewes P, Schumacher D, Beck D, Hesselbach P, Malki M, Neumayer P, Weyrich K, Tauschwitz A, Bagnoud V. High-energy laser facility PHELIX at GSI: latest advances and extended capabilities. High power laser science and engineering. 2024 Apr.; 12e39.      [DOI]      [File] 
Abel JJ, Apell J, Wiesner F, Reinhard J, Wünsche M, Felde N, Schmidl G, Plentz J, Paulus GG, Lippmann S, Fuchs S. Non-destructive depth reconstruction of Al-Al2Cu layer structure with nanometer resolution using extreme ultraviolet coherence tomography. Materials characterization. 2024 Apr.; 211113894 -.      [DOI]      [File] 
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