Ferro- and Antiferroelectricity

Order/Disorder versus Displacive

Ferro- and Antiferroelectricity

Order/Disorder versus Displacive

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Solid-state systems are frequently classi?ed according to their physical, str- tural or chemical properties. Such schemes are extremely helpful since pr- erties related to any such classi?cation are typically known and facilitate id- tifying solids with special material classes. The best-known examples of these schemes are conductivity or resistivity measurements by means of which m- als are easily distinguishable from insulators. However, frequently clear-cut decisions between material classes are not possible, since anisotropy, chemical composition, binding forces and local effects wash out distinct properties and lead to competition or coexistence. Such unresolved situations are especially typical for transition metal oxides that exhibit a variety of ground-state properties in a fascinating way. Here chemical substitution, doping, pressure or temperature effects easily in?uence the physical properties and may, for instance, induce metal/insulator, antif- romagnet/ferromagnet, insulator/superconductor transitions. This situation is analogous to perovskite ferroelectrics and hydrogen-bonded ferroelectrics, where ferroelectric/antiferroelectric transitions occur with chemical substi- tions of one of the constituent sublattices. In addition, glass-like states (dipolar glasses) are observed and relaxor ferroelectricity with a large potential for - plication frequently occurs.

Order/Disorder Versus or with Displacive Dynamics in Ferroelectric Systems
Experimental Evidence for the Coexistence of Order/Disorder and Displacive Behavior of Hydrogen-Bonded Ferroelectrics and Antiferroelectrics
Order and Disorder in Perovskites and Relaxor Ferroelectrics
Local Structure and Dynamics of Ferroelectric Solids
Ferroelectricity of SrTiO3 Induced by Oxygen Isotope Exchange
Evidence for Ferroelectric Nucleation Centres in the Pseudo-spin Glass System Rb1?x (ND4) x D2PO4: A 87Rb NMR Study
Anharmonic and Quantum Effects in KDP-Type Ferroelectrics: Modified Strong Dipole-Proton Coupling Model
A Comparison of Magnetic Random Access Memories (MRAMs) and Ferroelectric Random Access Memories (FRAMs).
ISBN 978-3-642-08053-1
Article number 9783642080531
Media type Book
Copyright year 2010
Publisher Springer, Berlin
Length XIV, 220 pages
Illustrations XIV, 220 p.
Language English