Flux-Grown Centimeter-Sized Sodium Niobate−Barium Titanate Solid Solution Single Crystals: Crystal Structure and Physical Properties

Abstract Centimeter-sized pale-yellow 0.91NaNbO3-0.09BaTiO3 (NN-9BT) single crystals were successfully grown by the flux method near the orthorhombic−tetragonal phase boundary of the NaNbO3−BaTiO3 system. The as-grown crystals display intergrowing grain features, and the maximum grain size is on the centimeter scale. Room-temperature X-ray diffraction revealed a {100}C-oriented orthorhombic structure dominated by the P21ma phase. At room temperature, the crystals exhibited a remanent polarization (Pr) of 10 μC/cm2 and a coercive field (Ec) of 32 kV/cm. The strain-electric field (S−E) response displayed an antisymmetric profile, which became increasingly pronounced with increasing temperature. The in situ piezoelectric coefficient (d33) reached a maximum value of approximately 160 pC/N at 180−190 °C before decreasing sharply near 220 °C. Temperature-dependent X-ray diffraction and Raman spectroscopy revealed a stepwise structural evolution from P21ma to Pbnm(1), Pbnm(2), and finally P4/mbm. The transition from Pbnm(1) to Pbnm(2) involved not only doubling of the b-axis but also a change in the rotational modes of the Nb/TiO6 octahedra. Impedance spectroscopy yielded an activation energy of approximately 0.986 eV, suggesting a defect-assisted thermally activated conduction mechanism.

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Publication Details

Journal
Crystal Growth & Design
Published
2026-10-03
DOI
https://doi.org/10.1021/acs.cgd.6c01063
Primary Topic
Ferroelectric and Piezoelectric Materials
Type
article
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article

Flux-Grown Centimeter-Sized Sodium Niobate−Barium Titanate Solid Solution Single Crystals: Crystal Structure and Physical Properties

Yongxing Wei, Zhonghua Dai, Li Jin, Zhaotian Chen et al.
Crystal Growth & Design
Ferroelectric and Piezoelectric Materials
article

Flux-Grown Centimeter-Sized Sodium Niobate−Barium Titanate Solid Solution Single Crystals: Crystal Structure and Physical Properties

Yongxing Wei, Zhonghua Dai, Li Jin, Zhaotian Chen, Zengyun Jian, PeiJiang LI, Zengzhe Xi, Changpeng Guan, Haotian Zhou, Zhong Yang, Jialin Niu, Changqing Jin, Yike Cheng
article en

Abstract

Abstract Centimeter-sized pale-yellow 0.91NaNbO3-0.09BaTiO3 (NN-9BT) single crystals were successfully grown by the flux method near the orthorhombic−tetragonal phase boundary of the NaNbO3−BaTiO3 system. The as-grown crystals display intergrowing grain features, and the maximum grain size is on the centimeter scale. Room-temperature X-ray diffraction revealed a {100}C-oriented orthorhombic structure dominated by the P21ma phase. At room temperature, the crystals exhibited a remanent polarization (Pr) of 10 μC/cm2 and a coercive field (Ec) of 32 kV/cm. The strain-electric field (S−E) response displayed an antisymmetric profile, which became increasingly pronounced with increasing temperature. The in situ piezoelectric coefficient (d33) reached a maximum value of approximately 160 pC/N at 180−190 °C before decreasing sharply near 220 °C. Temperature-dependent X-ray diffraction and Raman spectroscopy revealed a stepwise structural evolution from P21ma to Pbnm(1), Pbnm(2), and finally P4/mbm. The transition from Pbnm(1) to Pbnm(2) involved not only doubling of the b-axis but also a change in the rotational modes of the Nb/TiO6 octahedra. Impedance spectroscopy yielded an activation energy of approximately 0.986 eV, suggesting a defect-assisted thermally activated conduction mechanism.

Crystal Growth & Design
Xi'an Technological University (CN), Guangxi Science & Technology Normal University (CN), Xi'an Jiaotong University (CN)
Openalex Percentile: Top 26%
Ferroelectric and Piezoelectric Materials
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