Ionic conductivity of acceptor doped sodium bismuth titanate: influence of dopants, phase transitions and defect associates

2017 ◽  
Vol 5 (35) ◽  
pp. 8958-8965 ◽  
Author(s):  
Leonie Koch ◽  
Sebastian Steiner ◽  
Kai-Christian Meyer ◽  
In-Tae Seo ◽  
Karsten Albe ◽  
...  

The temperature dependent ionic conductivity of NBT results from an interplay of defect complex formation, phase coexistence, and dopant concentration.

2018 ◽  
Vol 54 (7) ◽  
pp. 744-748 ◽  
Author(s):  
E. D. Politova ◽  
A. V. Mosunov ◽  
D. A. Strebkov ◽  
N. V. Golubko ◽  
G. M. Kaleva ◽  
...  

1980 ◽  
Vol 25 (1) ◽  
pp. 395-397 ◽  
Author(s):  
I. P. Pronin ◽  
P. P. Syrnikov ◽  
V. A. Isupov ◽  
V. M. Egorov ◽  
N. V. Zaitseva

1985 ◽  
Vol 63 (1) ◽  
pp. 153-160 ◽  
Author(s):  
S. B. Vakhrushev ◽  
V. A. Isupov ◽  
B. E. Kvyatkovsky ◽  
N. M. Okuneva ◽  
I. P. Pronin ◽  
...  

2016 ◽  
Vol 42 (3) ◽  
pp. 4268-4273 ◽  
Author(s):  
Chun-Ming Wang ◽  
Liang Zhao ◽  
Yun Liu ◽  
Ray L. Withers ◽  
Shujun Zhang ◽  
...  

1989 ◽  
Vol 172 ◽  
Author(s):  
P. A. Morris ◽  
M. K. Crawford ◽  
M. G. Roelofs ◽  
J. D. Bierlein ◽  
P. K. Gallagher ◽  
...  

AbstractEvidence supporting the temperature dependent defect mechanism of nonstoichiometry on the potassium and oxygen sublattices in KTP is presented. The primary compensating defects for the formation of vacant potassium sites in typical flux grown KTP are vacant oxygen sites. Protons (OH-) are the principal defect compensating for the formation of vacant potassium sites in high temperature hydrothermal KTP. A model of the ionic conductivity in high temperature hydrothermal KTP is proposed in which specific protons participate in cooperative motion over a limited distance with the potassium vacancies migrating along the “channels” in the structure in the Z-direction. The higher activation energy measured for ionic conductivity in flux grown KTP (0.5 eV) relative to high temperature hydrothermal (0.3 eV) is suggested to be due to the energy required to dissociate from a defect complex, such as a (VO - VK). The correlation of ionic conductivity to damage susceptibility appears to be due to the levels of compensating defects for vacant potassium sites in KTP, which are related to the concentrations of Ti3+ formed in the crystals. Further study is ongoing to understand the specific mechanisms involved in the ionic conductivity and damage in KTP grown by the flux and hydrothermal techniques.


2011 ◽  
Vol 01 (01) ◽  
pp. 71-77 ◽  
Author(s):  
M. VENKATA RAMANA ◽  
S. ROOPAS KIRAN ◽  
N. RAMAMANOHAR REDDY ◽  
K. V. SIVA KUMAR ◽  
V. R. K. MURTHY ◽  
...  

Dielectric studies were carried out on a lead free Sodium Bismuth Titanate, NBT, ( Na 0.5 Bi 0.5 TiO 3) composition. The material was synthesized by conventional ceramic method (CS) and microwave sintering (MS). The presence of single phase has been confirmed by X-ray diffraction and scanning electron microscopy of NBT ceramic. The later technique (MS) resulted in material with high density, dielectric properties and improved microstructure. The transition temperature was observed slightly higher for microwave sintered (MS) material. Longitudinal modulus measurements are very sensitive property to identify the phase transitions in ceramics. Longitudinal modulus (L) measurements were also employed on these samples in the frequency 136 kHz and can be studied in the wide temperature range 30°C to 400°C. The elastic behavior (L) showed a break at two temperatures (~200°C and 350°C) in both the conventional and microwave sintered ceramics. In NBT ceramics, permittivity anomalies are connected to modulus anomalies. The results are correlated with the dielectric measurements. This behavior explained in the light of structural phase transitions in the ferroelectric ceramics.


Author(s):  
Pamela A. Thomas ◽  
Jens Kreisel ◽  
A. Michael Glazer ◽  
Pierre Bouvier ◽  
Quangzhong Jiang ◽  
...  

AbstractThe crystal structure of sodium bismuth titanate, Na


2020 ◽  
Vol 56 (1) ◽  
pp. 91-96
Author(s):  
E. D. Politova ◽  
D. A. Strebkov ◽  
A. V. Mosunov ◽  
N. V. Golubko ◽  
G. M. Kaleva ◽  
...  

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