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Comprehensive coverage of the basic theoretical concepts and applications of dielectrophoresis from a world-renowned expert.
Features hot application topics including: Diagnostics, Cell-based Drug Discovery, Sensors for Biomedical Applications, Characterisation and Sorting of Stem Cells, Separation of Cancer Cells from Blood and Environmental Monitoring
Focuses on those aspects of the theory and practice of dielectrophoresis concerned with characterizing and manipulating cells and other bioparticles such as bacteria, viruses, proteins and nucleic acids.
Features the relevant chemical and biological concepts for those working in physics and engineering
9.4 Modelling the Dielectric Properties of Cells 222
9.5 Effect of Cell Surface Charge on Maxwell Wagner Relaxation 233
9.6 Dielectric Properties of Bacteria 236
9.7 Summary 239
9.8 References 241
10 Dielectrophoresis: Theoretical and Practical Considerations 245
10.1 Introduction 245
10.2 Inherent Approximations in the DEP Force Equation 245
10.3 Refinements of the DEP Force Equation 249
10.4 Electrodes: Fabrication, Materials and Modelling 281
10.5 The Second (High–Frequency) DEP Crossover Frequency (fxo2) 296
10.6 Summary 298
10.7 References 300
11 Dielectrophoretic Studies of Bioparticles 309
11.1 Introduction 309
11.2 DEP Characterization and Separation of Live and Dead Cells 309
11.3 Mammalian Cells 332
11.4 Bacteria 345
11.5 Other Cell Types (Plant, Algae, Oocytes, Oocysts) andWorms 347
11.6 Virions 351
11.7 Nucleic Acids and Proteins 356
11.8 Summary 369
11.9 References 370
12 Microfluidic Concepts of Relevance to Dielectrophoresis 381
12.1 Introduction 381
12.2 Gases and Liquids 381
12.3 Fluids Treated as a Continuum 384
12.4 Basic Fluid Statics and Fluid Dynamics 385
12.5 Navier Stokes Equations 392
12.6 Diffusion 394
12.7 Ionic (Electrical) Double Layer 397
12.8 Electro–osmosis 400
12.9 Summary 403
12.10 References 404
Appendices 405
A Values of Fundamental Physical Constants 405
B SIPrefixes 405
C The Base Quantities in the SI System of Units 405
D Derived Physical Quantities, their Defining Equation or Law and Dimensions 405
E Diffusion Coefficients for Molecules and Ions inWater at 298 K 406
F Diffusion Coefficients for Bio–Particles inWater at 293 K 406
G Viscosity and Surface Tension Values for Liquids at 293 K 406
H Activity Coefficients for Common Compounds that Dissociate into Ions in Solution 406
I Electrical Mobility of Ions at 25 C in Dilute Aqueous Solution 406
J Buffering Systems and their pH Buffering Range 406
K Composition of 1 L of Human Blood 407
L Blood Cells, Platelets and Some Pathogenic Bioparticles 407
Author Index 411
Subject Index 423
Ronald Pethig Emeritus Professor of Bioelectronics, The University of Edinburgh, UK
Dielectrophoresis: Theory, Methodology and Biological Applications describes the significant advances in the theory, technology and biomedical applications of dielectrophoresis since Herbert Pohl′s seminal monograph of 1978. Taking an interdisciplinary approach, it covers aspects of the theory and practice of dielectrophoresis concerned with characterizing and manipulating cells and other bioparticles such as bacteria, viruses, proteins and nucleic acids. An introductory chapter places dielectrophoresis in context as a particle manipulator, and chapters are included to describe the dielectric properties of bioparticles and microfluidic concepts of relevance.
Applications described include:
Characterisation and Sorting of Stem Cells
Separation of Cancer Cells from Blood
Cell–based Drug Discovery
Diagnostics
Sensors for Biomedical Applications
Environmental Monitoring
This is a valuable resource for those studying bioelectronics, BIOMEMS, biophysics, biosensors, lab–on–chip technologies, microfluidics, particle analysis and separation, as well as for researchers working on the fundamentals of dielectrophoresis across a wide range of applications, both biological and non–biological. More formal and quantitative material is shown in text boxes for easy identification, while worked examples throughout the text assist student engagement with theory and practical modelling.