Advances in Dielectric Materials
In electromagnetism, a dielectric (or dielectric medium) is an electrical insulator that can be polarised by an applied electric field. When a dielectric material is placed in an electric field, electric charges do not flow through the material as they do in an electrical conductor, because they have no loosely bound, or free, electrons that may drift through the material, but instead they shift, only slightly, from their average equilibrium positions, causing dielectric polarisation. Because of dielectric polarisation, positive charges are displaced in the direction of the field and negative charges shift in the direction opposite to the field. This creates an internal electric field that reduces the overall field within the dielectric itself. If a dielectric is composed of weakly bonded molecules, those molecules not only become polarised, but also reorient so that their symmetry axes align to the field.
In the present book, ten typical literatures about dielectric materials published on international authoritative journals were selected to introduce the worldwide newest progress, which contains reviews or original researches on dielectric materials. We hope this book can demonstrate advances in dielectric materials as well as give references to the researchers, students and other related people.
Sample Chapter(s)
Preface (176 KB)
Components of the Book:
  • Chapter 1
    Flexible Dielectric Materials: Potential and Applications in Antennas and RF Sensors
  • Chapter 2
    Impact of volatility, non-stoichiometry, and atmospheres in perovskite piezoelectric and dielectric materials
  • Chapter 3
    Elastomeric dielectric materials from natural rubber/copper-modified coconut-shell-derived activated carbon composite: Combined experimental and density functional theory study
  • Chapter 4
    Discovery of high-performance dielectric materials with machine-learning-guided search
  • Chapter 5
    Enhancement of the underground cable current capacity by using nano-dielectrics
  • Chapter 6
    Ceramic-Based Dielectric Materials for Energy Storage Capacitor Applications
  • Chapter 7
    Neutron irradiation of SiO2 samples for Fusion optical and dielectric applications
  • Chapter 8
    Dielectric Stability of Triton X-100-Based Tissue-Mimicking Materials for Microwave Imaging
  • Chapter 9
    A Review on Sustainable Inks for Printed Electronics Materials for Conductive, Dielectric and Piezoelectric Sustainable Inks
  • Chapter 10
    Diagnostics of fs Laser-Induced Plasmas in Solid Dielectrics
Readership: Students, academics, teachers and other people attending or interested in dielectric materials.
Clive A. Randall
Department of Materials Science andEngineering, The Pennsylvania StateUniversity, University Park, PA, USA

Janosh Riebesel
Cavendish Laboratory, University of Cambridge, Cambridge, UK; Materials Science Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA

Peter Jürgens
Department of Physics and Astronomy, Aarhus University, Ny Munkegade 120, Aarhus C, DK-8000 Denmark

and more...
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