Title :
Mechanisms of depolarization of Pb(Zr0.52Ti0.48)O3 AND Pb(Zr0.95Ti0.05)O3 ferroelectrics under transverse shock compression
Author :
Sergey I. Shkuratov;Jason Baird;Vladimir G. Antipov;Evgueni F. Talantsev;Hwan Jo Ryul;Juan Carlos Valadez;Christopher S. Lynch;Allen H. Stults;Larry L. Altgilbers
Author_Institution :
Loki Incorporated, Rolla, MO 65409, U.S.A.
fDate :
5/1/2015 12:00:00 AM
Abstract :
Poled ferroelectrics are key components of autonomous explosive-driven pulsed power systems. Shock depolarization of ferroelectrics is a basic physical effect providing prime electrical power to autonomous systems. In this paper we report results of experimental studies of shock-induced and thermal-induced depolarization, and X-Ray diffraction of lead zirconate titanate ferroelectrics of two different compositions, PbZr0.52Ti0.48O3 (PZT 52/48) and PbZr0.95Ti0.05O3 (PZT 95/5). Specimens were shock loaded perpendicular to the polarization vector. The experimental results indicate that the shock induced depolarization mechanisms are different for these two compositions. Thus, the shock-induced charge released by PZT 52/48 is less than half of its remnant polarization. PZT 52/48 is transformed to a state with lower polarization, while PZT 95/5 under the same loading conditions undergoes a phase transition to a non-polar antiferroelectric phase and completely depolarized as a result of this phase transition.
Keywords :
"Electric shock","Stress","Temperature measurement","X-ray diffraction","Shock waves","Ceramics","Power systems"
Conference_Titel :
Pulsed Power Conference (PPC), 2015 IEEE
Electronic_ISBN :
2158-4923
DOI :
10.1109/PPC.2015.7296899