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X-ray fluorescence spectrometry
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ISBN: 0471836753 Year: 1988 Volume: vol 99 Publisher: New York, NY : John Wiley,

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Keywords

Spectrometric and optical chemical analysis --- fysicochemie --- Spectroscopie par rayons X --- X-ray spectroscopie --- X-ray spectroscopy --- Spectrometry, X-Ray Emission. --- Fluorescence spectroscopy --- #WSCH:AAS3 --- Fluorescence spectrometry --- Spectrometry, Fluorescence --- Spectroscopy, Fluorescence --- Luminescence spectroscopy --- Fluorescent probes --- Emission spectroscopy, X-ray --- Energy dispersive x-ray spectroscopy --- Excitation analysis, Fluorescent --- Fluorescence analysis, X-ray --- Fluorescent excitation analysis --- Fluorescent x-ray spectroscopy --- X-ray emission spectroscopy --- X-ray fluorescence analysis --- Spectrum analysis --- Spectrometry, X-Ray Emission --- Energy Dispersive X-Ray Fluorescence Spectrometry --- Energy Dispersive X-Ray Fluorescence Spectroscopy --- Energy Dispersive X-Ray Spectrometry --- Energy Dispersive X-Ray Spectroscopy --- Particle Induced X Ray Emission Spectrometry --- Proton Induced X Ray Emission Spectrometry --- Spectrometry, Particle Induced X Ray Emission --- Spectrometry, Proton Induced X Ray Emission --- Spectrometry, Xray Emission --- Wavelength Dispersive X-Ray Fluorescence Spectrometry --- Wavelength Dispersive X-Ray Fluorescence Spectroscopy --- Wavelength Dispersive X-Ray Spectrometry --- Wavelength Dispersive X-Ray Spectroscopy --- X-Ray Fluorescence Spectroscopy --- Xray Emission Spectroscopy --- Particle-Induced X-Ray Emission Spectrometry --- Proton-Induced X-Ray Emission Spectrometry --- Spectrometry, Particle-Induced X-Ray Emission --- Spectrometry, Proton-Induced X-Ray Emission --- Spectrometry, X-Ray Fluorescence --- X-Ray Emission Spectrometry --- X-Ray Emission Spectroscopy --- X-Ray Fluorescence Spectrometry --- Emission Spectrometry, X-Ray --- Emission Spectrometry, Xray --- Emission Spectroscopy, X-Ray --- Emission Spectroscopy, Xray --- Energy Dispersive X Ray Fluorescence Spectrometry --- Energy Dispersive X Ray Fluorescence Spectroscopy --- Energy Dispersive X Ray Spectrometry --- Energy Dispersive X Ray Spectroscopy --- Fluorescence Spectrometry, X-Ray --- Fluorescence Spectroscopy, X-Ray --- Spectrometry, X Ray Emission --- Spectrometry, X Ray Fluorescence --- Spectroscopy, X-Ray Emission --- Spectroscopy, X-Ray Fluorescence --- Spectroscopy, Xray Emission --- Wavelength Dispersive X Ray Fluorescence Spectrometry --- Wavelength Dispersive X Ray Fluorescence Spectroscopy --- Wavelength Dispersive X Ray Spectrometry --- Wavelength Dispersive X Ray Spectroscopy --- X Ray Emission Spectrometry --- X Ray Emission Spectroscopy --- X Ray Fluorescence Spectrometry --- X Ray Fluorescence Spectroscopy --- X-Ray Fluorescence Spectroscopies --- Xray Emission Spectrometry --- XES (X-ray emission spectroscopy)


Book
Laser-Driven Accelerators, Radiations, and Their Applications
Authors: ---
Year: 2022 Publisher: Basel MDPI - Multidisciplinary Digital Publishing Institute

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Particle accelerators and radiation based on radio-frequency (RF) cavities have significantly contributed to the advancement of science and technology in the most recent century. However, the rising costs and scales for building cutting-edge accelerators act as barriers to accessing these particle and radiation sources. Since the introduction of chirped pulse amplification technology in the 1990s, short-pulse, high-power lasers have enabled the realization of laser-driven accelerations and radiation sources. Laser-driven accelerators and radiation sources could be a viable alternative to providing compact and cost-effective particle and photon sources. An accelerating field in a plasma, driven by intense laser pulses, is typically several orders of magnitude greater than that of RF accelerators, while controlling the plasma media and intense laser pulses is highly demanding. Therefore, numerous efforts have been directed toward developing laser-driven high-quality particle beams and radiation sources with the goal of paving the way for these novel sources to be used in a variety of applications. This Special Issue covers the latest developments in laser-based ion and electron accelerators; laser-plasma radiation sources; advanced targetry and diagnostic systems for laser-driven particle accelerators; particle beam transport solutions for multidisciplinary applications; ionizing radiation dose map determination; and new approaches to laser–plasma nuclear fusion using high-intensity, short laser pulses.

Keywords

Research & information: general --- Mathematics & science --- spectra of laser accelerated particle beams --- mapping of radiation dose --- GEANT4 simulations --- Monte Carlo simulation --- laser-driven ion acceleration --- imaging plate --- high repetition rate target --- ion acceleration --- laser-plasma interaction --- Thomson parabola --- electromagnetic pulse --- laser electron acceleration --- laser proton acceleration --- high-intensity lasers --- non-destructive testing --- elemental analysis --- petawatt laser --- laser plasma --- laser wakefield acceleration --- compact electron accelerator --- GeV electron beam --- laser-plasma accelerator --- TNSA --- laser-accelerated protons --- magnetic beamline --- Particle Induced X-ray Emission --- laser-produced plasma --- plasma light source --- far-ultraviolet spectroscopy --- Seya-Namioka monochromator --- radiation-hydrodynamics --- collisional-radiative model --- Monte Carlo simulations --- Geant4 --- laser-accelerated ion beams --- proton-boron fusion --- laser-plasma acceleration --- α-particle beam --- spectra of laser accelerated particle beams --- mapping of radiation dose --- GEANT4 simulations --- Monte Carlo simulation --- laser-driven ion acceleration --- imaging plate --- high repetition rate target --- ion acceleration --- laser-plasma interaction --- Thomson parabola --- electromagnetic pulse --- laser electron acceleration --- laser proton acceleration --- high-intensity lasers --- non-destructive testing --- elemental analysis --- petawatt laser --- laser plasma --- laser wakefield acceleration --- compact electron accelerator --- GeV electron beam --- laser-plasma accelerator --- TNSA --- laser-accelerated protons --- magnetic beamline --- Particle Induced X-ray Emission --- laser-produced plasma --- plasma light source --- far-ultraviolet spectroscopy --- Seya-Namioka monochromator --- radiation-hydrodynamics --- collisional-radiative model --- Monte Carlo simulations --- Geant4 --- laser-accelerated ion beams --- proton-boron fusion --- laser-plasma acceleration --- α-particle beam


Book
Laser-Driven Accelerators, Radiations, and Their Applications
Authors: ---
Year: 2022 Publisher: Basel MDPI - Multidisciplinary Digital Publishing Institute

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Abstract

Particle accelerators and radiation based on radio-frequency (RF) cavities have significantly contributed to the advancement of science and technology in the most recent century. However, the rising costs and scales for building cutting-edge accelerators act as barriers to accessing these particle and radiation sources. Since the introduction of chirped pulse amplification technology in the 1990s, short-pulse, high-power lasers have enabled the realization of laser-driven accelerations and radiation sources. Laser-driven accelerators and radiation sources could be a viable alternative to providing compact and cost-effective particle and photon sources. An accelerating field in a plasma, driven by intense laser pulses, is typically several orders of magnitude greater than that of RF accelerators, while controlling the plasma media and intense laser pulses is highly demanding. Therefore, numerous efforts have been directed toward developing laser-driven high-quality particle beams and radiation sources with the goal of paving the way for these novel sources to be used in a variety of applications. This Special Issue covers the latest developments in laser-based ion and electron accelerators; laser-plasma radiation sources; advanced targetry and diagnostic systems for laser-driven particle accelerators; particle beam transport solutions for multidisciplinary applications; ionizing radiation dose map determination; and new approaches to laser–plasma nuclear fusion using high-intensity, short laser pulses.


Book
Laser-Driven Accelerators, Radiations, and Their Applications
Authors: ---
Year: 2022 Publisher: Basel MDPI - Multidisciplinary Digital Publishing Institute

Loading...
Export citation

Choose an application

Bookmark

Abstract

Particle accelerators and radiation based on radio-frequency (RF) cavities have significantly contributed to the advancement of science and technology in the most recent century. However, the rising costs and scales for building cutting-edge accelerators act as barriers to accessing these particle and radiation sources. Since the introduction of chirped pulse amplification technology in the 1990s, short-pulse, high-power lasers have enabled the realization of laser-driven accelerations and radiation sources. Laser-driven accelerators and radiation sources could be a viable alternative to providing compact and cost-effective particle and photon sources. An accelerating field in a plasma, driven by intense laser pulses, is typically several orders of magnitude greater than that of RF accelerators, while controlling the plasma media and intense laser pulses is highly demanding. Therefore, numerous efforts have been directed toward developing laser-driven high-quality particle beams and radiation sources with the goal of paving the way for these novel sources to be used in a variety of applications. This Special Issue covers the latest developments in laser-based ion and electron accelerators; laser-plasma radiation sources; advanced targetry and diagnostic systems for laser-driven particle accelerators; particle beam transport solutions for multidisciplinary applications; ionizing radiation dose map determination; and new approaches to laser–plasma nuclear fusion using high-intensity, short laser pulses.

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