Asynchronous Single-Shot Optical Sampling of High-Repetition-Rate Signals Using Temporal Magnification

Author(s):  
Yoshitomo Okawachi ◽  
Reza Salem ◽  
Adrea R. Johnson ◽  
Kasturi Saha ◽  
Jacob S. Levy ◽  
...  
2012 ◽  
Vol 37 (23) ◽  
pp. 4892 ◽  
Author(s):  
Yoshitomo Okawachi ◽  
Reza Salem ◽  
Adrea R. Johnson ◽  
Kasturi Saha ◽  
Jacob S. Levy ◽  
...  

CLEO: 2013 ◽  
2013 ◽  
Author(s):  
Yoshitomo Okawachi ◽  
Reza Salem ◽  
Adrea R. Johnson ◽  
Kasturi Saha ◽  
Jacob S. Levy ◽  
...  

2021 ◽  
pp. 1-1
Author(s):  
Xinyi Wang ◽  
Gangqiang Zhou ◽  
Yuyao Guo ◽  
Liangjun Lu ◽  
Muhammad Shemyal Nisar ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Zhe Zhang ◽  
Xi Yang ◽  
Xiaobiao Huang ◽  
Junjie Li ◽  
Timur Shaftan ◽  
...  

AbstractTo harness the full potential of the ultrafast electron diffraction (UED) and microscopy (UEM), we must know accurately the electron beam properties, such as emittance, energy spread, spatial-pointing jitter, and shot-to-shot energy fluctuation. Owing to the inherent fluctuations in UED/UEM instruments, obtaining such detailed knowledge requires real-time characterization of the beam properties for each electron bunch. While diagnostics of these properties exist, they are often invasive, and many of them cannot operate at a high repetition rate. Here, we present a technique to overcome such limitations. Employing a machine learning (ML) strategy, we can accurately predict electron beam properties for every shot using only parameters that are easily recorded at high repetition rate by the detector while the experiments are ongoing, by training a model on a small set of fully diagnosed bunches. Applying ML as real-time noninvasive diagnostics could enable some new capabilities, e.g., online optimization of the long-term stability and fine single-shot quality of the electron beam, filtering the events and making online corrections of the data for time-resolved UED, otherwise impossible. This opens the possibility of fully realizing the potential of high repetition rate UED and UEM for life science and condensed matter physics applications.


Instruments ◽  
2021 ◽  
Vol 5 (4) ◽  
pp. 38
Author(s):  
Franziska Treffert ◽  
Chandra B. Curry ◽  
Todd Ditmire ◽  
Griffin D. Glenn ◽  
Hernan J. Quevedo ◽  
...  

High-flux, high-repetition-rate neutron sources are of interest in studying neutron-induced damage processes in materials relevant to fusion, ultimately guiding designs for future fusion reactors. Existing and upcoming petawatt laser systems show great potential to fulfill this need. Here, we present a platform for producing laser-driven neutron beams based on a high-repetition-rate cryogenic liquid jet target and an adaptable stacked lithium and beryllium converter. Selected ion and neutron diagnostics enable monitoring of the key parameters of both beams. A first single-shot proof-of-principle experiment successfully implemented the presented platform at the Texas Petawatt Laser facility, achieving efficient generation of a forward-directed neutron beam. This work lays the foundation for future high-repetition-rate experiments towards pulsed, high-flux, fast neutron sources for radiation-induced effect studies relevant for fusion science and applications that require neutron beams with short pulse duration.


2015 ◽  
Author(s):  
E. Roussel ◽  
C. Evain ◽  
M. Le Parquier ◽  
C. Szwaj ◽  
S. Bielawski ◽  
...  

2000 ◽  
Vol 50 (1-4) ◽  
pp. 541-546 ◽  
Author(s):  
R. Bähnisch ◽  
W. Groß ◽  
A. Menschig

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