Self-amplified spontaneous emission (SASE) pulses delivered by free electron lasers (FELs) are inherently fluctuating sources; each pulse varies in energy, duration, arrival time and spectral shape. Therefore, there is strong demand for a full characterization of the properties of SASE radiation, which will facilitate more precise interpretation of the experimental data taken at SASE FELs. In this paper, we present an investigation into the fluctuations of pulse duration, spectral distribution, arrival time and pulse energy of SASE XUV pulses at FLASH, both on a shot-to-shot basis and on average over many pulses. With the aid of simulations, we derived scaling laws for these parameters and disentangled the statistical SASE fluctuations from...
In this paper we present a systematic approach for analytical description of SASE FEL (SASE: self-am...
The stochastic nature of the self-amplified spontaneous emission (SASE) process of free-electron las...
<p><strong>Figure 2.</strong> Statistics of the generated pulses. Typical distributions of (a) the i...
Radiation from the SASE FEL operating in the linear regime holds properties of completely chaotic po...
The random nature of self-amplified spontaneous emission (SASE) is a well-known challenge for x-ray ...
We report measurements of large gain for a single pass Free Electron Laser operating in Self Amplifi...
The goal of this dissertation was to investigate a reliable single-shot pulse duration diagnostic to...
The emerging concept of `beam by design' in free-electron laser (FEL) accelerator physics aims for a...
Self-amplified spontaneous emission (SASE) free-electron lasers (FELs) deliver ultrashort pulses wit...
We review the statistical description of the chaotic time evolution of the radiation from a self-amp...
Because of the stochastic nature of self-amplified spontaneous emission (SASE), it is crucial to mea...
For photon diagnostics at free-electron lasers (FELs), the determination of the photon pulse duratio...
The Fano absorption line shape of an autoionizing state encodes information on its internal atomic s...
In this paper, we propose a new approach to measuring ultrafast dynamics with free-electron lasers (...
Because of the stochastic nature of self-amplified spontaneous emission (SASE), it is crucial to mea...
In this paper we present a systematic approach for analytical description of SASE FEL (SASE: self-am...
The stochastic nature of the self-amplified spontaneous emission (SASE) process of free-electron las...
<p><strong>Figure 2.</strong> Statistics of the generated pulses. Typical distributions of (a) the i...
Radiation from the SASE FEL operating in the linear regime holds properties of completely chaotic po...
The random nature of self-amplified spontaneous emission (SASE) is a well-known challenge for x-ray ...
We report measurements of large gain for a single pass Free Electron Laser operating in Self Amplifi...
The goal of this dissertation was to investigate a reliable single-shot pulse duration diagnostic to...
The emerging concept of `beam by design' in free-electron laser (FEL) accelerator physics aims for a...
Self-amplified spontaneous emission (SASE) free-electron lasers (FELs) deliver ultrashort pulses wit...
We review the statistical description of the chaotic time evolution of the radiation from a self-amp...
Because of the stochastic nature of self-amplified spontaneous emission (SASE), it is crucial to mea...
For photon diagnostics at free-electron lasers (FELs), the determination of the photon pulse duratio...
The Fano absorption line shape of an autoionizing state encodes information on its internal atomic s...
In this paper, we propose a new approach to measuring ultrafast dynamics with free-electron lasers (...
Because of the stochastic nature of self-amplified spontaneous emission (SASE), it is crucial to mea...
In this paper we present a systematic approach for analytical description of SASE FEL (SASE: self-am...
The stochastic nature of the self-amplified spontaneous emission (SASE) process of free-electron las...
<p><strong>Figure 2.</strong> Statistics of the generated pulses. Typical distributions of (a) the i...