1.3.1.4 SwissFEL1.3.1.5 European XFEL; 1.3.2 Soft XFELs; 1.3.2.1 FLASH in Hamburg; 1.3.2.2 FERMI; 1.3.3 Novel Developments; 1.3.3.1 Increasing the Longitudinal Coherence of XFEL Radiation; 1.3.3.2 Self-seeding; 1.3.3.3 Harmonic Lasing; 1.3.3.4 Purified SASE (pSASE); 1.3.3.5 High-brightness SASE (HB-SASE) and improved SASE (iSASE); 1.3.3.6 EEHG; 1.3.3.7 Hard X-ray FEL Oscillator (XFELO); 1.3.3.8 Compact XFEL Sources; 1.4 Conclusion; Acknowledgements; References; Section II -- Biological Structure Determination; Chapter 2 -- Imaging Protein Dynamics by XFELs
2.1 Introduction: Seeing Atoms Without Using Crystals2.2 Radiation Damage Limits Resolution; 2.3 Serial Crystallography at XFELs for Structural Biology; 2.4 Molecular Machines and Single-particle Imaging; 2.5 Time-resolved Serial Crystallography, Optical Pump-probe Methods and Photosynthesis; 2.6 Time-resolved SFX for Slower Processes: Mixing Jets and Other Excitations; 2.7 Fast Solution Scattering and Angular Correlation Methods; 2.8 Data Analysis; 2.9 Summary; Acknowledgements; References; Chapter 3 -- Overcoming Data Processing Challenges for Breakthrough Crystallography; 3.1 Introduction
3.2 Data Measurement Challenges Intrinsic to SFX Experiments3.3 Data Processing Tools Aimed at Still-shot Signal Integration; 3.3.1 The Universal Approach of Modelling the Lattice; 3.3.2 The Difficulty of Deducing the Lattice Model from Partial Spots; 3.3.3 An Approach to Compensate for Missetting; 3.3.4 Models of Crystal Imperfection; 3.3.5 Post-refinement; 3.3.6 Outlier Rejection and Consistent Lattice Alignment; 3.3.7 Lessons from Validation; 3.3.8 Detector Geometry; 3.4 Future Outlook; Acknowledgements; References; Chapter 4 -- 3D Imaging Using an X-ray Free Electron Laser; 4.1 Background
4.2 The Challenge4.3 Methods to Orient Diffraction Patterns; 4.4 Expand, Maximize and Compress; 4.4.1 Updating the Orientations; 4.4.2 Updating the Model; 4.4.3 Choosing the Similarity Function d; 4.4.4 Photon Fluency; 4.5 Validation; 4.6 The 3D Reconstruction of the Mimivirus Particle; 4.7 The Resolution Limit; 4.8 Dynamics; Acknowledgements; References; Section III -- Photochemistry in Biological Systems; Chapter 5 -- Dynamic and Static X-ray Scattering from Biological Systems on the Femtosecond to Nanosecond Time Scale; 5.1 Introduction; 5.1.1 The Biological Part; 5.1.2 The Physical Part
Cover; X-Ray Free Electron Lasers: Applications in Materials, Chemistry and Biology; Preface; Quote; Contents; Section I -- Properties of XFELs; Chapter 1 -- The Physics and Status of X-ray Free-electron Lasers; 1.1 Introduction; 1.1.1 Early Work on X-ray Lasers and the Development of XFELs; 1.1.2 Undulator Radiation Characteristics; 1.1.3 Introduction to FELs; 1.1.4 FEL Physics as Collective Instability; 1.2 Three-dimensional (3D) FEL Theory; 1.2.1 Characteristics of XFELs; 1.3 Present Status; 1.3.1 Hard X-ray FELs; 1.3.1.1 LCLS; 1.3.1.2 SACLA; 1.3.1.3 Pohang Accelerator Laboratory (PAL) XFEL
X-Ray free electron lasers : applications in materials, chemistry and biology
2017
1 Online-Ressource (463 Seiten)
Campusweiter Zugriff (Universität Hannover).- Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots.
Includes index
Book
Electronic Resource
English
British Library Conference Proceedings | 2000
|AIAA | 1983
|High-Power Free-Electron Lasers: Theory and Applications
British Library Online Contents | 1997
|Superheterodyne Electron-Wave Free-Electron Lasers
British Library Online Contents | 1993
|Laser propulsion using free electron lasers
AIAA | 1992
|