Current advances on Talbot–Lau x-ray imaging diagnostics for high energy density experiments (invited)

Author:

Valdivia M. P.12ORCID,Perez-Callejo G.3ORCID,Bouffetier V.4,Collins G. W.5,Stoeckl C.6ORCID,Filkins T.6ORCID,Mileham C.6,Romanofsky M.6,Begishev I. A.6,Theobald W.6ORCID,Klein S. R.7ORCID,Schneider M. K.8,Beg F. N.1ORCID,Casner A.9ORCID,Stutman D.10

Affiliation:

1. Center for Energy Research, University of California San Diego, La Jolla, California 92093, USA

2. Physics and Astronomy Department, The Johns Hopkins University, Baltimore, Maryland 21218, USA

3. Departamento de Física Teórica, Atómica y Óptica, Universidad de Valladolid, 47011 Valladolid, Spain

4. European XFEL GmbH, Holzkoppel 4, 22869 Schenefeld, Germany

5. General Atomics, Inertial Fusion Technology, San Diego, California 92121, USA

6. Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14623, USA

7. University of Michigan, Ann Arbor, Michigan 48109, USA

8. Johns Hopkins University, Applied Physics Laboratory, Laurel, Maryland 20723, USA

9. CEA-CESTA, 15 Avenue des Sablières, CS 60001, 33116 Le Barp CEDEX, France

10. ELI-NP, Institute for Physics and Nuclear Engineering, Bucharest-Magurele 077125, Romania

Abstract

Talbot–Lau x-ray interferometry is a refraction-based diagnostic that can map electron density gradients through phase-contrast methods. The Talbot–Lau x-ray deflectometry (TXD) diagnostics have been deployed in several high energy density experiments. To improve diagnostic performance, a monochromatic TXD was implemented on the Multi-Tera Watt (MTW) laser using 8 keV multilayer mirrors (Δθ/θ = 4.5%-5.6%). Copper foil and wire targets were irradiated at 1014–1015 W/cm2. Laser pulse length (∼10 to 80 ps) and backlighter target configurations were explored in the context of Moiré fringe contrast and spatial resolution. Foil and wire targets delivered increased contrast <30%. The best spatial resolution (<6  μm) was measured for foils irradiated 80° from the surface. Further TXD diagnostic capability enhancement was achieved through the development of advanced data postprocessing tools. The Talbot Interferometry Analysis (TIA) code enabled x-ray refraction measurements from the MTW monochromatic TXD. Additionally, phase, attenuation, and dark-field maps of an ablating x-pinch load were retrieved through TXD. The images show a dense wire core of ∼60  μm diameter surrounded by low-density material of ∼40  μm thickness with an outer diameter ratio of ∼2.3. Attenuation at 8 keV was measured at ∼20% for the dense core and ∼10% for the low-density material. Instrumental and experimental limitations for monochromatic TXD diagnostics are presented. Enhanced postprocessing capabilities enabled by TIA are demonstrated in the context of high-intensity laser and pulsed power experimental data analysis. Significant advances in TXD diagnostic capabilities are presented. These results inform future diagnostic technique upgrades that will improve the accuracy of plasma characterization through TXD.

Funder

National Nuclear Security Administration

Conseil Regional Aquitaine

Agence Nationale de la Recherche

Publisher

AIP Publishing

Subject

Instrumentation

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Ultrafast radiographic imaging and tracking: An overview of instruments, methods, data, and applications;Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment;2023-12

2. Invited article: X-ray phase contrast imaging in inertial confinement fusion and high energy density research;Review of Scientific Instruments;2023-02-01

3. Phase imaging of irradiated foils at the OMEGA EP facility using phase-stepping X-ray Talbot–Lau deflectometry;High Power Laser Science and Engineering;2023

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