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1.
Sci Rep ; 8(1): 11010, 2018 Jul 20.
Article in English | MEDLINE | ID: mdl-30030516

ABSTRACT

Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchrotron-like x-ray radiation. It emanates from a centimetre scale plasma accelerator producing GeV level electron beams. In recent years betatron radiation has been developed as a unique source capable of producing high resolution x-ray images in compact geometries. However, until now, the short pulse nature of this radiation has not been exploited. This report details the first experiment to utilize betatron radiation to image a rapidly evolving phenomenon by using it to radiograph a laser driven shock wave in a silicon target. The spatial resolution of the image is comparable to what has been achieved in similar experiments at conventional synchrotron light sources. The intrinsic temporal resolution of betatron radiation is below 100 fs, indicating that significantly faster processes could be probed in future without compromising spatial resolution. Quantitative measurements of the shock velocity and material density were made from the radiographs recorded during shock compression and were consistent with the established shock response of silicon, as determined with traditional velocimetry approaches. This suggests that future compact betatron imaging beamlines could be useful in the imaging and diagnosis of high-energy-density physics experiments.

2.
Sci Rep ; 5: 13244, 2015 Aug 18.
Article in English | MEDLINE | ID: mdl-26283308

ABSTRACT

A bright µm-sized source of hard synchrotron x-rays (critical energy Ecrit > 30 keV) based on the betatron oscillations of laser wakefield accelerated electrons has been developed. The potential of this source for medical imaging was demonstrated by performing micro-computed tomography of a human femoral trabecular bone sample, allowing full 3D reconstruction to a resolution below 50 µm. The use of a 1 cm long wakefield accelerator means that the length of the beamline (excluding the laser) is dominated by the x-ray imaging distances rather than the electron acceleration distances. The source possesses high peak brightness, which allows each image to be recorded with a single exposure and reduces the time required for a full tomographic scan. These properties make this an interesting laboratory source for many tomographic imaging applications.


Subject(s)
Femur/diagnostic imaging , Imaging, Three-Dimensional/instrumentation , Lasers , Particle Accelerators/instrumentation , Tomography, X-Ray Computed/instrumentation , Absorptiometry, Photon/instrumentation , Equipment Design , Equipment Failure Analysis , Humans , Image Enhancement/instrumentation , In Vitro Techniques , Reproducibility of Results , Sensitivity and Specificity
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