Journal of Inorganic Materials, Volume. 39, Issue 8, 887(2024)
[1] ZHENG T, WU J G, XIAO D Q et al. Recent development in lead-free perovskite piezoelectric bulk materials[J]. Progress in Materials Science(2018).
[2] ZHOU Z Y, CHEN T, DONG X L. Research progress of perovskite layer structured piezoelectric ceramics with super high Curie temperature[J]. Journal of Inorganic Materials(2018).
[3] JIANG X N, KIM K, ZHANG S J et al. High-temperature piezoelectric sensing[J]. Sensors(2013).
[4] ZHANG F Q, LI Y X. Recent progress on bismuth layer-structured ferroelectrics[J]. Journal of Inorganic Materials(2014).
[6] XIE X C, ZHOU Z Y, LIANG R H et al. Superior piezoelectricity in bismuth titanate-based lead-free high-temperature piezoceramics
[7] SUBBARAO E C. A family of ferroelectric bismuth compounds[J]. Journal of Physics and Chemistry of Solids(1962).
[8] SHIMAKAWA Y, KUBO Y, NAKAGAWA Y et al. Crystal structure and ferroelectric properties of ABi2Ta2O9(A=Ca, Sr, and Ba)[J]. Physical Review B(2000).
[9] LONG C B, WANG B, REN W et al. Significantly enhanced electrical properties in CaBi2Nb2O9-based high-temperature piezoelectric ceramics[J]. Applied Physics Letters(2020).
[10] YAN H X, ZHANG H T, UBIC R et al. A lead-free high-curie-point ferroelectric ceramic, CaBi2Nb2O9[J]. Advanced Materials(2005).
[11] CHEN H, ZHAI J. Enhancing piezoelectric performance of CaBi2Nb2O9 ceramics through microstructure control[J]. Journal of Electronic Materials(2012).
[12] LI Y G, ZHOU Z Y, LIANG R H et al. A simple Bi3+ self-doping strategy constructing pseudo-tetragonal phase boundary to enhance electrical properties in CaBi2Nb2O9 high-temperature piezoceramics[J]. Journal of the European Ceramic Society(2022).
[13] HOU Q C, YANG B, MA C et al. Tailoring structure and piezoelectric properties of CaBi2Nb2O9 ceramics by W6+-doping[J]. Ceramics International(2022).
[14] WU Y J, CHEN J, YUAN J et al. Structure refinements and the influences of A-site vacancies on properties of Na0.5Bi2.5Nb2O9- based high temperature piezoceramics[J]. Journal of Applied Physics(2016).
[15] LIU G, WANG D, WU C et al. A realization of excellent piezoelectricity and good thermal stability in CaBi2Nb2O9: pseudo phase boundary[J]. Journal of the American Ceramic Society(2018).
[16] SUBBARAO E C. Ferroelectricity in Bi4Ti3O12 and its solid solutions[J]. Physical Review(1961).
[17] BLAKE S M, FALCONER M J, MCCREEDY M et al. Cation in ferroelectric Aurivillius phases of the type Bi2ANb2O9 (A=Ba, Sr, Ca)[J]. Journal of Materials Chemistry(1997).
[18] XING X, CAO F, PENG Z et al. Electrical properties and sintering characteristics of zirconium doped CaBi2Nb2O9 ceramics[J]. Ceramics International(2018).
[19] ZAKHAROV N, KLYUEV V A, TOPOROV Y P. Phase transitions and electric characteristics of ferroelectric Ca2Nb2O7and Sr2Nb2O7[J]. Zhurnal Fizicheskoj Khimii(1999).
[20] ZHANG X D, YAN H X, MICHAEL J R et al. Effect of A site substitution on the properties of CaBi2Nb2O9 ferroelectric ceramics[J]. Journal of the American Ceramic Society(2008).
[21] ISUPOV V A. Two types of ABi2B2O9 layered perovskite-like ferroelectrics[J]. Inorganic Materials(2007).
[22] FRIT B, MERCURIO J P. The crystal chemistry and dielectric properties of the Aurivillius family of complex bismuth oxides with perovskite-like layered structures[J]. Journal of Alloys and Compounds(1992).
[23] ZENG X X, YANG J C, ZUO L et al. Li/Ce/La multidoping on crystal structure and electric properties of CaBi2Nb2O9 piezoceramics[J]. Journal of Inorganic Materials(2019).
[24] CHEN J N, WANG Q, LU H T et al. Enhanced electrical properties and conduction mechanism of A-site rare-earth Nd-substituted CaBi2Nb2O9[J]. Journal of Physics D: Applied Physics(2022).
[25] XING X H, CAO F, PENG Z et al. The effects of oxygen vacancies on the electrical properties of W, Ti doped CaBi2Nb2O9 piezoceramics[J]. Current Applied Physics(2018).
[26] XIE X C, ZHOU Z Y, CHEN T et al. Enhanced electrical properties of NaBi modified CaBi2Nb2O9-based Aurivillius piezoceramics
[27] WANG X P, WU J G, XIAO D Q et al. New potassium-sodium niobate ceramics with a giant
[28] WITHERS R L, THOMPSON J G, RAE A D. The crystal chemistry underlying ferroelectricity in Bi4Ti3O12, Bi3TiNbO9, and Bi2WO6[J]. Journal of Solid State Chemistry(1991).
[29] QIN C, SHEN Z Y, LUO W Q et al. Effect of excess Bi on the structure and electrical properties of CaBi2Nb2O9 ultrahigh temperature piezoceramics[J]. Journal of Materials Science: Materials in Electronics(2018).
[30] SIMÕES A Z, RICCARDI C S, CAVALCANTE L S et al. Impact of oxygen atmosphere on piezoelectric properties of CaBi2Nb2O9 thin films[J]. Acta Materialia(2007).
[31] LI F, ZHANG S J, XU Z et al. The contributions of polar nanoregions to the dielectric and piezoelectric responses in domain-engineered relaxor-PbTiO3 crystals[J]. Advanced Functional Materials(2017).
[32] PICININ A, LENTE M H, EIRAS J A et al. Theoretical and experimental investigations of polarization switching in ferroelectric materials[J]. Physical Review B(2004).
Get Citation
Copy Citation Text
Jianfeng HUANG, Ruihong LIANG, Zhiyong ZHOU.
Category:
Received: Feb. 5, 2024
Accepted: --
Published Online: Dec. 12, 2024
The Author Email: Zhiyong ZHOU (zyzhou@mail.sic.ac.cn)