X-ray free-electron lasers enable the investigation of the structure and dynamics of diverse systems, including atoms, molecules, nanocrystals and single bioparticles, under extreme conditions(1-7). Many imaging applications that target biological systems and complex materials use hard X-ray pulses with extremely high peak intensities (exceeding 10(20) watts per square centimetre)(3,5). However, fundamental investigations have focused mainly on the individual response of atoms and small molecules using soft X-rays with much lower intensities(8-17). Studies with intense X-ray pulses have shown that irradiated atoms reach a very high degree of ionization, owing to multiphoton absorption(8,12,13,18), which in a heteronuclear molecular system o...
Free-electron lasers provide high intensity pulses with femtosecond duration and are ideal tools in ...
Doctor of PhilosophyDepartment of PhysicsArtem RudenkoA new era in ultrafast science has started in ...
The recent availability of X-ray Free Electron Lasers (XFELs) has opened a completely new and unexpl...
X-ray free-electron lasers enable the investigation of the structure and dynamics of diverse systems...
Current hard X-ray free-electron laser (XFEL) sources can deliver doses to biological ma...
Sample damage by X-rays and other radiation limits the resolution of structural studies on non-repet...
Current hard X-ray free-electron laser (XFEL) sources can deliver doses to biological macromolecules...
An era of exploring the interactions of high-intensity, hard X-rays with matter has begun with the s...
The advent of X-ray free-electron lasers (XFELs) over the past decade, providing ultraintense femtos...
Investigations of soft matter using ultrashort high intensity pulses have been made possible through...
The direct observation of molecular dynamics initiated by x-rays has been hindered to dateby the lac...
“Probe-before-destroy” methodology permitted diffraction and imaging measurements of intact specimen...
During the last five years, serial femtosecond crystallography using X-ray laser pulses has been dev...
Free-electron lasers provide high intensity pulses with femtosecond duration and are ideal tools in ...
Doctor of PhilosophyDepartment of PhysicsArtem RudenkoA new era in ultrafast science has started in ...
The recent availability of X-ray Free Electron Lasers (XFELs) has opened a completely new and unexpl...
X-ray free-electron lasers enable the investigation of the structure and dynamics of diverse systems...
Current hard X-ray free-electron laser (XFEL) sources can deliver doses to biological ma...
Sample damage by X-rays and other radiation limits the resolution of structural studies on non-repet...
Current hard X-ray free-electron laser (XFEL) sources can deliver doses to biological macromolecules...
An era of exploring the interactions of high-intensity, hard X-rays with matter has begun with the s...
The advent of X-ray free-electron lasers (XFELs) over the past decade, providing ultraintense femtos...
Investigations of soft matter using ultrashort high intensity pulses have been made possible through...
The direct observation of molecular dynamics initiated by x-rays has been hindered to dateby the lac...
“Probe-before-destroy” methodology permitted diffraction and imaging measurements of intact specimen...
During the last five years, serial femtosecond crystallography using X-ray laser pulses has been dev...
Free-electron lasers provide high intensity pulses with femtosecond duration and are ideal tools in ...
Doctor of PhilosophyDepartment of PhysicsArtem RudenkoA new era in ultrafast science has started in ...
The recent availability of X-ray Free Electron Lasers (XFELs) has opened a completely new and unexpl...