Atomic and Molecular Collision Theory
Until recently, the field of atomic and molecular collisions was left to a handful of practitioners who essentially explored it as a branch of atomic physics and gathered their experimental re­ sults mainly from spectroscopy measurements in bulk. But in the past ten years or so, all of this has dramatically changed, and we are now witnessing the rapid growth of a large body of research that encompasses the simplest atoms as well as the largest mole­ cules, that looks at a wide variety of phenomena well outside purely spectroscopic observation, and that finds applications in an unexpectedly broad range of physico-chemical and physical processes. The latter are in turn surprisingly close to very important sectors of applied research, such as the modeling of molecular lasers, the study of isotope separation techniques, and the energy losses in confined plasmas, to mention just a few of them. As a consequence of this healthy state of affairs, greatly diversified research pathways have developed; however, their specialized problems are increasingly at risk of being viewed in isolation, although they are part of a major and extended branch of physics or chemistry. This is particularly true when it comes to the theory of this work — where well-established methods and models of one subfield are practically unknown to researchers in other subfields — and, consequently, the danger of wasteful duplication arising is quite real.
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Atomic and Molecular Collision Theory
Until recently, the field of atomic and molecular collisions was left to a handful of practitioners who essentially explored it as a branch of atomic physics and gathered their experimental re­ sults mainly from spectroscopy measurements in bulk. But in the past ten years or so, all of this has dramatically changed, and we are now witnessing the rapid growth of a large body of research that encompasses the simplest atoms as well as the largest mole­ cules, that looks at a wide variety of phenomena well outside purely spectroscopic observation, and that finds applications in an unexpectedly broad range of physico-chemical and physical processes. The latter are in turn surprisingly close to very important sectors of applied research, such as the modeling of molecular lasers, the study of isotope separation techniques, and the energy losses in confined plasmas, to mention just a few of them. As a consequence of this healthy state of affairs, greatly diversified research pathways have developed; however, their specialized problems are increasingly at risk of being viewed in isolation, although they are part of a major and extended branch of physics or chemistry. This is particularly true when it comes to the theory of this work — where well-established methods and models of one subfield are practically unknown to researchers in other subfields — and, consequently, the danger of wasteful duplication arising is quite real.
109.99 In Stock
Atomic and Molecular Collision Theory

Atomic and Molecular Collision Theory

by Franco A. Gianturco (Editor)
Atomic and Molecular Collision Theory

Atomic and Molecular Collision Theory

by Franco A. Gianturco (Editor)

Paperback(Softcover reprint of the original 1st ed. 1982)

$109.99 
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Overview

Until recently, the field of atomic and molecular collisions was left to a handful of practitioners who essentially explored it as a branch of atomic physics and gathered their experimental re­ sults mainly from spectroscopy measurements in bulk. But in the past ten years or so, all of this has dramatically changed, and we are now witnessing the rapid growth of a large body of research that encompasses the simplest atoms as well as the largest mole­ cules, that looks at a wide variety of phenomena well outside purely spectroscopic observation, and that finds applications in an unexpectedly broad range of physico-chemical and physical processes. The latter are in turn surprisingly close to very important sectors of applied research, such as the modeling of molecular lasers, the study of isotope separation techniques, and the energy losses in confined plasmas, to mention just a few of them. As a consequence of this healthy state of affairs, greatly diversified research pathways have developed; however, their specialized problems are increasingly at risk of being viewed in isolation, although they are part of a major and extended branch of physics or chemistry. This is particularly true when it comes to the theory of this work — where well-established methods and models of one subfield are practically unknown to researchers in other subfields — and, consequently, the danger of wasteful duplication arising is quite real.

Product Details

ISBN-13: 9781461333142
Publisher: Springer US
Publication date: 11/12/2011
Series: NATO Science Series B: , #71
Edition description: Softcover reprint of the original 1st ed. 1982
Pages: 506
Product dimensions: 7.01(w) x 10.00(h) x 0.04(d)

Table of Contents

Collisions Involving Electrons and Photons.- Electron and Photon Collisions with Atoms and Ions.- Electron and Photon Collisions with Molecules.- Recombination Processes in Atomic and Molecular Physics.- Charge Exchange and Ionization in Ion-Atom Collisions.- Atoms in Astrophysical Plasmas.- Collisions of Atoms and Molecules.- Low Energy Atom-Atom Collisions.- Internal Energy Transfers in Molecular Collisions.- Chemical Photophysics.- Collisions Under Special Conditions.- Collisions of Charged Particles with Highly Excited Atoms.- Electron-Atom Scattering in the Field of a Laser.- Lecturers.- Participants.
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