TY - JOUR
T1 - Stable femtosecond X-rays with tunable polarization from a laser-driven accelerator
AU - Döpp, Andreas
AU - Mahieu, Benoit
AU - Lifschitz, Agustin
AU - Thaury, Cedric
AU - Doche, Antoine
AU - Guillaume, Emilien
AU - Grittani, Gabriele
AU - Lundh, Olle
AU - Hansson, Martin
AU - Gautier, Julien
AU - Kozlova, Michaela
AU - Goddet, Jean Philippe
AU - Rousseau, Pascal
AU - Tafzi, Amar
AU - Malka, Victor
AU - Rousse, Antoine
AU - Corde, Sebastien
AU - Phuoc, Kim Ta
N1 - Publisher Copyright:
© The Author(s) 2017.
PY - 2017/1/1
Y1 - 2017/1/1
N2 - Technology based on high-peak-power lasers has the potential to provide compact and intense radiation sources for a wide range of innovative applications. In particular, electrons that are accelerated in the wakefield of an intense laser pulse oscillate around the propagation axis and emit X-rays. This betatron source, which essentially reproduces the principle of a synchrotron at the millimeter scale, provides bright radiation with femtosecond duration and high spatial coherence. However, despite its unique features, the usability of the betatron source has been constrained by its poor control and stability. In this article, we demonstrate the reliable production of X-ray beams with tunable polarization. Using ionization-induced injection in a gas mixture, the orbits of the relativistic electrons emitting the radiation are reproducible and controlled. We observe that both the signal and beam profile fluctuations are significantly reduced and that the beam pointing varies by less than a tenth of the beam diver-gence. The polarization ratio reaches 80%, and the polarization axis can easily be rotated. We anticipate a broad impact of the source, as its unprecedented performance opens the way for new applications.
AB - Technology based on high-peak-power lasers has the potential to provide compact and intense radiation sources for a wide range of innovative applications. In particular, electrons that are accelerated in the wakefield of an intense laser pulse oscillate around the propagation axis and emit X-rays. This betatron source, which essentially reproduces the principle of a synchrotron at the millimeter scale, provides bright radiation with femtosecond duration and high spatial coherence. However, despite its unique features, the usability of the betatron source has been constrained by its poor control and stability. In this article, we demonstrate the reliable production of X-ray beams with tunable polarization. Using ionization-induced injection in a gas mixture, the orbits of the relativistic electrons emitting the radiation are reproducible and controlled. We observe that both the signal and beam profile fluctuations are significantly reduced and that the beam pointing varies by less than a tenth of the beam diver-gence. The polarization ratio reaches 80%, and the polarization axis can easily be rotated. We anticipate a broad impact of the source, as its unprecedented performance opens the way for new applications.
KW - laser-plasma interaction
KW - laser-wakefield acceleration
KW - synchrotron light sources
U2 - 10.1038/LSA.2017.86
DO - 10.1038/LSA.2017.86
M3 - Article
AN - SCOPUS:85099590275
SN - 2095-5545
VL - 6
JO - Light: Science and Applications
JF - Light: Science and Applications
IS - 11
M1 - e17086
ER -