| Literature DB >> 24449912 |
Daniel Phelan1, Christopher Stock, Jose A Rodriguez-Rivera, Songxue Chi, Juscelino Leão, Xifa Long, Yujuan Xie, Alexei A Bokov, Zuo-Guang Ye, Panchapakesan Ganesh, Peter M Gehring.
Abstract
PbZr(1-x)Ti(x)O3 (PZT) and Pb(Mg1/3Nb2/3)(1-x)Ti(x)O3 (PMN-xPT) are complex lead-oxide perovskites that display exceptional piezoelectric properties for pseudorhombohedral compositions near a tetragonal phase boundary. In PZT these compositions are ferroelectrics, but in PMN-xPT they are relaxors because the dielectric permittivity is frequency dependent and exhibits non-Arrhenius behavior. We show that the nanoscale structure unique to PMN-xPT and other lead-oxide perovskite relaxors is absent in PZT and correlates with a greater than 100% enhancement of the longitudinal piezoelectric coefficient in PMN-xPT relative to that in PZT. By comparing dielectric, structural, lattice dynamical, and piezoelectric measurements on PZT and PMN-xPT, two nearly identical compounds that represent weak and strong random electric field limits, we show that quenched (static) random fields establish the relaxor phase and identify the order parameter.Entities:
Keywords: lead zirconate titanate; neutron scattering; piezoelectricity; short-range order; soft modes
Year: 2014 PMID: 24449912 PMCID: PMC3918832 DOI: 10.1073/pnas.1314780111
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205