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000301141 041__ $$aEnglish
000301141 1001_ $$0P:(DE-H253)PIP1012203$$aSantra, Robin$$b0$$eCorresponding author
000301141 245__ $$aInteraction of Intense X-Ray Beams with Atoms
000301141 260__ $$aCham$$bSpringer International Publishing$$c2016
000301141 29510 $$aSynchrotron Light Sources and Free-Electron Lasers / Jaeschke, Eberhard J. (Editor)   ; Cham : Springer International Publishing, 2016, Chapter 25 ; ISBN: 978-3-319-14393-4
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000301141 520__ $$aGenerally, the probability that a given atom in a material absorbs an X-ray photon in a single X-ray pulse is much less than unity for storage-ring-based X-ray sources, even for third-generation synchrotron radiation sources. This situation has changed dramatically with the arrival of X-ray free-electron lasers: In the micro-focus of an X-ray free-electron laser, saturation of X-ray photoabsorption is routinely achieved. The immediate consequence is that the overall behavior of matter under such extreme conditions is characterized by efficient multiphoton absorption via a sequence of single-photon absorption events combined with inner-shell decay cascades and collisional ionization processes. In this way, unusual, highly excited states of matter are formed. Focusing on free atoms, this article provides a theoretical framework for the description of X-ray–matter interactions. The nature of X-ray multiphoton physics is explained, and the theory is compared with experimental data on atoms.
000301141 536__ $$0G:(DE-HGF)POF3-6211$$a6211 - Extreme States of Matter: From Cold Ions to Hot Plasmas (POF3-621)$$cPOF3-621$$fPOF III$$x0
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000301141 7001_ $$0P:(DE-HGF)0$$aYoung, Linda$$b1
000301141 773__ $$a10.1007/978-3-319-14394-1_25
000301141 7870_ $$0PUBDB-2020-04111$$aJaeschke, Eberhard J. et.al.$$b2nd ed. 2020$$eIsMemberOf$$tSynchrotron Light Sources and Free-Electron Lasers
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000301141 9101_ $$0I:(DE-588b)2008985-5$$6P:(DE-H253)PIP1012203$$aDeutsches Elektronen-Synchrotron$$b0$$kDESY
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