Complex Plasmas: Scientific Challenges and Technological Opportunities

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This book provides the reader with an introduction to the physics of complex plasmas, a discussion of the specific scientific and technical challenges they present and an overview of their potential technological applications.

Complex plasmas differ from conventional high-temperature plasmas in several ways: they may contain additional species, including nano meter- to micrometer-sized particles, negative ions, molecules and radicals and they may exhibit strong correlations or quantum effects. This book introduces the classical and quantum mechanical approaches used to describe and simulate complex plasmas. It also covers some key experimental techniques used in the analysis of these plasmas, including calorimetric probe methods, IR absorption techniques and X-ray absorption spectroscopy.

The final part of the book reviews the emerging applications of microcavity and microchannel plasmas, the synthesis and assembly of nanomaterials through plasma electrochemistry, the large-scale generation of ozone using microplasmas and novel applications of atmospheric-pressure non-thermal plasmas in dentistry.

Going beyond the scope of traditional plasma texts, the presentation is very well suited for senior undergraduate, graduate students and postdoctoral researchers specializing in plasma physics.

Author(s): Michael Bonitz, Jose Lopez, Kurt Becker, Hauke Thomsen (eds.)
Series: Springer Series on Atomic, Optical, and Plasma Physics 82
Edition: 1
Publisher: Springer International Publishing
Year: 2014

Language: English
Pages: 491
Tags: Plasma Physics; Numerical and Computational Physics; Nanoscale Science and Technology; Semiconductors; Surface and Interface Science, Thin Films

Front Matter....Pages i-xiii
Front Matter....Pages 1-1
Phase Transitions in Dusty Plasmas....Pages 3-49
Introduction to Streaming Complex Plasmas A: Attraction of Like-Charged Particles....Pages 51-71
Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects....Pages 73-99
Front Matter....Pages 101-101
Quantum Hydrodynamics....Pages 103-152
Introduction to Configuration Path Integral Monte Carlo....Pages 153-194
Front Matter....Pages 195-195
Calorimetric Probes for Energy Flux Measurements in Process Plasmas....Pages 197-234
Fundamental and Applied Studies of Molecular Plasmas Using Infrared Absorption Techniques....Pages 235-266
Surface Electrons at Plasma Walls....Pages 267-298
Characterization of Local Structures in Plasma Deposited Semiconductors by X-ray Absorption Spectroscopy....Pages 299-320
Kinetic Monte Carlo Simulations of Cluster Growth and Diffusion in Metal-Polymer Nanocomposites....Pages 321-370
Front Matter....Pages 371-371
Microcavity and Microchannel Plasmas: General Characteristics and Emerging Applications....Pages 373-398
Plasma Electrochemistry: A Novel Chemical Process for the Synthesis and Assembly of Nanomaterials....Pages 399-425
Progress in Large-Scale Ozone Generation Using Microplasmas....Pages 427-453
Dental Applications of Atmospheric-Pressure Non-Thermal Plasmas....Pages 455-485
Back Matter....Pages 487-491