X-ray 3D Imaging of Low-Density Laser-Target Materials

Author:

Artyukov Igor1ORCID,Borisenko Natalia1,Burenkov Gleb2,Eriskin Alexander1ORCID,Polikarpov Maxim2,Vinogradov Alexander1

Affiliation:

1. P.N. Lebedev Physical Institite RAS, 53 Leninsky Prospekt, Moscow 119991, Russia

2. European Molecular Biology Laboratory, Hamburg Unit c/o DESY, Building 25A, Notkestrasse 85, 22607 Hamburg, Germany

Abstract

Achieving optimal design and precise control of the internal structure of laser-target materials are the primary objectives in various laser physics experiments, particularly in generating high flux photon and neutron beams. The study of low-density materials poses considerable challenges for X-ray analysis due to their high transparency and minimal contrast. In this study, to obtain clear visualization of foams with sparse structures, we used phase-contrast X-ray tomography, utilizing a high-quality monochromatic X-ray beam from the synchrotron radiation source PETRA-III at DESY. Employing phase-contrast algorithms, the 3D structure of a foam-suspended glass microsphere inside the plastic cylinder was reconstructed with a level of image quality sufficient to visualize uniformity, displacement, and surface roughness on both sides of the microsphere. The primary focus of this investigation was a CH plastic capillary including 10 mg/cc CHO foam with a glass microsphere positioned at the center. The results of this study demonstrate that phase-contrast X-ray tomography with coherent synchrotron radiation is an effective and valuable technique for the development of new laser targets containing structured low-density materials.

Funder

P.N. Lebedev Physical Institute New Scientific Group 55

Publisher

MDPI AG

Subject

Radiology, Nuclear Medicine and imaging,Instrumentation,Atomic and Molecular Physics, and Optics

Reference35 articles.

1. Ammonia borane methanolysis for hydrogen evolution on Cu3Mo2O9/NiMoO4 hollow microspheres;Liao;Chem. Eng. J.,2022

2. Hydrogenated ZnIn2S4 microspheres: Boosting photocatalytic hydrogen evolution by sulfur vacancy engineering and mechanism insight;Wang;Phys. Chem. Chem. Phys.,2019

3. Natural sponge-like wood-derived aerogel for solar-assisted adsorption and recovery of high-viscous crude oil;Chao;Chem. Eng. J.,2020

4. Mechanically Flexible Carbon Aerogel with Wavy Layers and Springboard Elastic Supporting Structure for Selective Oil/Organic Solvent Recovery;Dong;ACS Appl. Mater. Interfaces,2021

5. Merkul’ev, Y.A. (April, January 29). Low-density absorber—Converter of laser fusion target with direct laser beams irradiation. Proceedings of the Russian-China Seminar, Chengdu, China.

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