Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7744516 | Solid State Ionics | 2018 | 8 Pages |
Abstract
Structurally ordered piezoelectric Ca3TaGa3Si2O14 (CTGS) single crystals are studied. The elastic and piezoelectric constants are determined in the temperature range from 20â¯Â°C to 900â¯Â°C by two independent approaches: resonant and pulse-echo acoustic methods. Further, the temperature dependent acoustic losses are examined. These investigations reveal two loss peaks with maxima near 68â¯Â°C and 416â¯Â°C at 4.5â¯MHz that are attributed to anelastic point defect relaxations. Further, the transport of oxygen is investigated using the isotope 18O as a tracer at temperatures from 1000â¯Â°C to 1200â¯Â°C. It is shown that the oxygen self-diffusion coefficients are at least three orders of magnitude lower than those of langasite, which is one reason for relatively low losses in CTGS at temperatures on the order of 1000â¯Â°C. Finally, the long-term stability of fundamental materials properties including electrical conductivity and resonance frequency is examined at 1000â¯Â°C. After one year of thermal treatment, the resonance frequency of resonators made from crystals of different sources is found to decrease only between 0.1% and 0.4%.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Yuriy Suhak, Michal Schulz, Ward L. Johnson, Andrei Sotnikov, Hagen Schmidt, Holger Fritze,