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Pulse Radiolysis

Pulse Radiolysis
Author: Max S. Matheson
Publisher: MIT Press (MA)
Total Pages: 232
Release: 1969
Genre: Medical
ISBN:

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PULSE RADIOLYSIS OF AQUEOUS SOLUTIONS.

PULSE RADIOLYSIS OF AQUEOUS SOLUTIONS.
Author: Nathan Klein
Publisher:
Total Pages: 50
Release: 1967
Genre:
ISBN:

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X-ray induced aqueous chemical species were examined for reaction characteristics and homogeneous dispersion. A 3 krad, 50 ns, X-ray pulse from an electron accelerator produced the hydrated electron, e( - )aq, in solutions of Na2CO3, Ba(OH)2, H2SO4, and HClO4. Kinetic spectroscopy with nanosecond range resolving time measured the optical absorption of e( - )aq but showed no evidence of any nonhomogeneous dispersion of e( - )aq. This indicates that any spur lifetime of e( - )aq is less than 1 ns. The hydrated electron has a rapid, apparent second-order decay in air-free alkaline solutions during the first half microsecond after the X-ray pulse. It is proposed this decay may be due to the reaction of e( - )aq with either H2O(+) or excited water, H2O*. The data are such that neither possible species can be dismissed as less plausible than the other. (Author).


Pulse Radiolysis of Irradiated Systems

Pulse Radiolysis of Irradiated Systems
Author: Yoneho Tabata
Publisher: CRC Press
Total Pages: 520
Release: 1991-04-15
Genre: Science
ISBN: 9780849348815

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Pulse Radiolysis presents an in-depth discussion of the pulse radiolysis technique, one of the most important and powerful means for detecting transient and relaxation phenomena and following their behavior in irradiated systems. The book covers the principle of pulse radiolysis, identifies various kinds of pulse radiolysis techniques, and discusses recent advancements in the field. The text also discusses new experimental pulse radiolysis techniques (basic and applied) in broad scientific fields such as physics, chemistry, biology, and engineering. These techniques include picosecond pulse radiolysis, single particle radiolysis, and muon-induced transient phenomena. Pulse Radiolysis provides essential information for all professionals involved with pulse radiolysis research.


The Radiation Chemistry of Water

The Radiation Chemistry of Water
Author: Ivan Draganic
Publisher: Elsevier
Total Pages: 257
Release: 2012-12-02
Genre: Science
ISBN: 0323158781

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The Radiation Chemistry of Water tackles radiation-induced changes in water and explains the behavior of irradiated water, with some changes in aqueous solutions. This book deals primarily with short-lived species like the hydroxyl radical, hydrated electron, and hydrogen atom, which cause the chemical changes in irradiated water and aqueous solutions. These species and their origin, properties, and dependence of their yields on various factors are discussed in several chapters. Other topics also covered are the diffusion-kinetic model of water radiolysis and some general cases, radiation sources, and dosimetry. This book is most useful to students in the fields of radiation chemistry, physical chemistry, radiobiology, and nuclear technology.


X-ray Spectroscopy and Pulse Radiolysis of Aqueous Solutions

X-ray Spectroscopy and Pulse Radiolysis of Aqueous Solutions
Author: Alice Heller England
Publisher:
Total Pages: 188
Release: 2011
Genre:
ISBN:

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The interaction of radiation and matter plays a crucial role in studies of aqueous solutions. Depending on the type of radiation, it can either be used a probe or as a source of excitation. With X-ray spectroscopy, high-energy photons are tuned to excite core electrons, giving insight into electronic structure and the local chemical environment of both the solvent and solute. In pulse radiolysis, an accelerated electron beam is used as an excitation source to create transient radiolytic products. Here, I present detailed studies using both X-rays and electron beams to investigate aqueous solutions and phenomena. In Chapter 2, I discuss the probing of the pH-dependent aqueous carbonate system by soft X-rays. Spectral changes between carbonate, bicarbonate, carbonic acid, and carbon dioxide are analyzed by comparison with theoretically computed spectra. I also give an introduction to Near Edge X-ray Absorption Fine Structure (NEXAFS) spectroscopy and discuss experimental details for the design and employment of liquid microjets. Chapter 3 describes a variety of different projects aimed at expanding the capabilities of the X-ray absorption experiments. These new directions include characterizing free radicals in solution, developing a new detection technique, exploring X-ray induced damage to solid biomolecules, and potentially investigating unusual nitrogen compounds. In Chapter 4, I explore the interaction of high-energy electrons (8 MeV) with aqueous nickel (II) solutions. Pulse radiolysis combined with UV-visible absorption spectroscopy is used to investigate the kinetics of Ni2+ with water radiolysis products. The rate constant for the solvated electron reaction with Ni2+ is measured up to 300°C, and the electronic spectrum for the monovalent nickel ion is also recorded at high temperatures.