Stoichiometry, Stability and Phase Equilibria of CaCu3Ti4O12 (CCTO) High Permittivity Ceramics
Lead Research Organisation:
University of Sheffield
Department Name: Materials Science and Engineering
Abstract
There is much current interest in the electrical properties of CaCu3Ti4O12, CCTO, ceramics, since they are, depending on their method of fabrication, heterogeneous materials with semiconducting grain cores and insulating grain or domain boundaries. This unusual electrical microstructure gives rise to a very high effective permittivity associated with the geometric dimensions of the insulating regions and the possibility of applications in electroceramics as, for instance, a novel capacitor material. Scientific interest in CCTO continues, in particular to gain understanding of the reasons for the electrical heterogeneity and to modify its properties by compositional control or doping. This proposal aims to clarify four basic features of the materials science of CCTO: first its true stoichiometry since there is considerable evidence that it is either non-stoichiometric or exists over a range of cation compositions; second, its high temperature stability and in particular, its melting behaviour and whether or not this is preceded by loss of Cu2O from the crystal lattice; third, its intrinsic electrical properties as a function of temperature and atmosphere, and in particular, the nature of the transition from activated hopping to localised electron motion with decreasing temperature and the dependence of this phenomenon on composition; fourth, the factors that control its ceramic microstructure and in particular, the occurrence of anomalous grain growth leading to a duplex structure on the firing of certain samples. Given the continuing great interest in the properties of CCTO, this fundamental material science study is essential to provide underpinning information to allow the fabrication of CCTO in various forms and to optimise control of its properties.
Organisations
Publications
Fiorenza P
(2008)
Localized electrical characterization of the giant permittivity effect in CaCu3Ti4O12 ceramics
in Applied Physics Letters
N/a Ferarrelli
(2008)
Impedance spectroscopy study of single crystal CaCu3Ti4O12
in In preparation
N/a Li
(2008)
Low temperature processing of CaCu3Ti4O12 ceramics by spark plasma sintering
in Journal of the American Ceramic Society
N/a Schmidt
(2008)
Stoichiometry and defect structure of CaCu3Ti4O12 ceramics
in In preparation
Description | This work established the origin of the giant dielectric response of the material CCTO. It is primarily a barrier layer capacitor effect with a contribution from the sample - electrode contacts |
Exploitation Route | Scientists are seeking new materials with high permittivity and low loss at high frequencies. Several groups have made follow-up studies of this kind on CCTO, but so far it has not been possible to prepare materials with the desired combination of properties |
Sectors | Education Electronics Energy |
Description | CCTO is currently of great interest due to its attractive combination of electrical properties. It continues to be studied by many groups worldwide and our publications on this topic have received hundreds of citations |
First Year Of Impact | 2007 |
Sector | Education,Electronics,Energy |
Impact Types | Economic |