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Quantitative X-Ray Phase-Contrast Microtomography from a Compact Laser Driven Betatron Source

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arxiv 1412.6355 v1 pith:UL7OCRPM submitted 2014-12-19 physics.plasm-ph

Quantitative X-Ray Phase-Contrast Microtomography from a Compact Laser Driven Betatron Source

classification physics.plasm-ph
keywords x-raybetatronimagingphase-contrastcoherencedrivenelectronslimited
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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X-ray phase-contrast imaging has recently led to a revolution in resolving power and tissue contrast in biomedical imaging, microscopy and materials science. The necessary high spatial coherence is currently provided by either large-scale synchrotron facilities with limited beamtime access or by microfocus X-ray tubes with rather limited flux. X-rays radiated by relativistic electrons driven by well-controlled high-power lasers offer a promising route to a proliferation of this powerful imaging technology. A laser-driven plasma wave accelerates and wiggles electrons, giving rise to brilliant keV X-ray emission. This so-called Betatron radiation is emitted in a collimated beam with excellent spatial coherence and remarkable spectral stability. Here we present the first phase-contrast micro-tomogram revealing quantitative electron density values of a biological sample using betatron X-rays, and a comprehensive source characterization. Our results suggest that laser-based X-ray technology offers the potential for filling the large performance gap between synchrotron- and current X-ray tube-based sources.

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