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 a brilliant keV X-ray emission. This so-called betatron radiation is emitted in a collimated beam with excellent spatial coherence and remarkable spectral stabil...
Since their discovery in 1896, x-rays have had a profound impact on science, medicine and technology...
Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchro...
Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchro...
8siX-ray phase-contrast imaging has recently led to a revolution in resolving power and tissue contr...
X-ray phase-contrast imaging is a powerful technique that allows great resolving power for low absor...
Both the laser-plasma wakefield accelerator (LWFA) and X-ray phase-contrast imaging (XPCi) are promi...
International audienceDevelopment of x-ray phase contrast imaging applications with a laboratory sca...
We show that x-rays from a recently demonstrated table top source of bright, ultrafast, coherent syn...
Both the laser-plasma wakefield accelerator (LWFA) and X-ray phase-contrast imaging (XPCi) are promi...
International audienceBright femtosecond x-ray beams, with energies up to a few hundreds of keV, hav...
Between X-ray tubes and large-scale synchrotron sources, a large gap in performance exists with resp...
International audienceThis study explores the ability of a hard K α x-ray source (17.48 keV) produce...
X-ray phase-contrast imaging allows for non-invasive analysis in low-absorbing materials, such as so...
In the field of X-ray microcomputed tomography (µCT) there is a growing need to reduce acquisition t...
Since their discovery in 1896, x-rays have had a profound impact on science, medicine and technology...
Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchro...
Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchro...
8siX-ray phase-contrast imaging has recently led to a revolution in resolving power and tissue contr...
X-ray phase-contrast imaging is a powerful technique that allows great resolving power for low absor...
Both the laser-plasma wakefield accelerator (LWFA) and X-ray phase-contrast imaging (XPCi) are promi...
International audienceDevelopment of x-ray phase contrast imaging applications with a laboratory sca...
We show that x-rays from a recently demonstrated table top source of bright, ultrafast, coherent syn...
Both the laser-plasma wakefield accelerator (LWFA) and X-ray phase-contrast imaging (XPCi) are promi...
International audienceBright femtosecond x-ray beams, with energies up to a few hundreds of keV, hav...
Between X-ray tubes and large-scale synchrotron sources, a large gap in performance exists with resp...
International audienceThis study explores the ability of a hard K α x-ray source (17.48 keV) produce...
X-ray phase-contrast imaging allows for non-invasive analysis in low-absorbing materials, such as so...
In the field of X-ray microcomputed tomography (µCT) there is a growing need to reduce acquisition t...
Since their discovery in 1896, x-rays have had a profound impact on science, medicine and technology...
Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchro...
Betatron radiation from laser wakefield accelerators is an ultrashort pulsed source of hard, synchro...