Page 151 - Read Online
P. 151

Page 10 of 11                           Qin et al. Microstructures 2023;3:2023035  https://dx.doi.org/10.20517/microstructures.2023.34

                   USA 2022;119:e2118631119.  DOI  PubMed  PMC
               7.       Liu K, Zhang Y, Marwat MA, et al. Large electrostrain in low-temperature sintered NBT-BT-0.025FN incipient piezoceramics. J Am
                   Ceram Soc 2020;103:3739-47.  DOI
               8.       Zhang Y, Liu X, Wang G, et al. Enhanced mechanical energy harvesting capability in sodium bismuth titanate based lead-free
                   piezoelectric. J Alloys Compd 2020;825:154020.  DOI
               9.       Wang D, Hussain F, Khesro A, et al. Composition and temperature dependence of structure and piezoelectricity in (1-x)(K Na )NbO
                                                                                                  1-y  y  3
                   -x(Bi Na )ZrO  lead-free ceramics. J Am Ceram Soc 2017;100:627-37.  DOI
                       1/2  1/2  3
               10.      Khesro A, Wang D, Hussain F, et al. Temperature dependent piezoelectric properties of lead-free (1-x)K Na NbO -xBiFeO
                                                                                           0.6  0.4  3   3
                   ceramics. Front Mater 2020;7:140.  DOI
               11.      Zhang S, Kounga AB, Aulbach E, Ehrenberg H, Rödel J. Giant strain in lead-free piezoceramics Bi Na TiO -BaTiO -K Na NbO   3
                                                                                                3
                                                                                                  0.5
                                                                                                     0.5
                                                                                          3
                                                                                      0.5
                                                                                   0.5
                   system. Appl Phys Lett 2007;91:112906.  DOI
               12.      Zheng T, Wu J, Xiao D, Zhu J. Giant d  in nonstoichiometric (K,Na)NbO -based lead-free ceramics. Scr Mater 2015;94:25-7.  DOI
                                                                   3
                                            33
               13.      Shi H, Chen J, Wang R, Dong S. Full set of material constants of (Na K )NbO -BaZrO -(Bi Li )TiO  lead-free piezoelectric
                                                                                   0.5
                                                                     0.5
                                                                          3
                                                                                     0.5
                                                                               3
                                                                                          3
                                                                  0.5
                   ceramics at the morphotropic phase boundary. J Alloys Compd 2016;655:290-5.  DOI
               14.      Bai W, Li P, Li L, Zhang J, Shen B, Zhai J. Structure evolution and large strain response in BNT-BT lead-free piezoceramics modified
                   with Bi(Ni Ti )O . J Alloys Compd 2015;649:772-81.  DOI
                          0.5  0.5  3
               15.      Hiruma Y, Nagata H, Takenaka T. Formation of morphotropic phase boundary and electrical properties of (Bi Na )TiO -
                                                                                                 1/2  1/2  3
                   Ba(Al Nb )O  solid solution ceramics. Jpn J Appl Phys 2009;48:09KC08.  DOI
                       1/2  1/2  3
               16.      Dittmer R, Webber KG, Aulbach E, Jo W, Tan X, Rödel J. Electric-field-induced polarization and strain in 0.94(Bi Na )TiO -
                                                                                                 1/2  1/2  3
                   0.06BaTiO  under uniaxial stress. Acta Mater 2013;61:1350-8.  DOI
                          3
               17.      Li T, Lou X, Ke X, et al. Giant strain with low hysteresis in A-site-deficient (Bi Na )TiO -based lead-free piezoceramics. Acta
                                                                            0.5
                                                                                 3
                                                                         0.5
                   Mater 2017;128:337-44.  DOI
               18.      Wang G, Hu T, Zhu W, et al. Multiple local symmetries result in a common average polar axis in high-strain BiFeO -based ceramics.
                                                                                               3
                   Phys Rev Lett 2023;130:076801.  DOI
               19.      Lu Z, Wang G, Li L, et al. In situ poling X-ray diffraction studies of lead-free BiFeO -SrTiO  ceramics. Mater Today Phys
                                                                                3    3
                   2021;19:100426.  DOI
               20.      Wang G, Fan Z, Murakami S, et al. Origin of the large electrostrain in BiFeO -BaTiO  based lead-free ceramics. J Mater Chem A
                                                                       3     3
                   2019;7:21254-63.  DOI
               21.      Li Z, Hou Z, Song W, et al. Mg-substitution for promoting magnetic and ferroelectric properties of BiFeO  multiferroic nanoparticles.
                                                                                        3
                   Mater Lett 2016;175:207-11.  DOI
               22.      Wang D, Wang M, Liu F, et al. Sol-gel synthesis of Nd-doped BiFeO  multiferroic and its characterization. Ceram Int 2015;41:8768-
                                                                3
                   72.  DOI
               23.      Sono N, Kinoshita Y, Kida N, Ito T, Okamoto H, Miyamoto T. Terahertz-field-induced changes of electronic states associated with a
                   polarization modulation in BiFeO . J Phys Soc Jpn 2021;90:033703.  DOI
                                         3
               24.      Huang S, Hong F, Xia Z, et al. Multiferroic behavior from synergetic response of multiple ordering parameters in BiFeO  single crystal
                                                                                                3
                   under high magnetic field up to 50 tesla. J Appl Phys 2020;127:044101.  DOI
               25.      Białek M, Ito T, Rønnow H, Ansermet J. Terahertz-optical properties of a bismuth ferrite single crystal. Phys Rev B 2019:99.  DOI
               26.      Blázquez Martínez A, Grysan P, Girod S, et al. Strain engineering of the electro-optic effect in polycrystalline BiFeO  films [invited].
                                                                                               3
                   Opt Mater Express 2023;13:2061.  DOI
               27.      Yi J, Liu L, Shu L, Huang Y, Li JF. Outstanding ferroelectricity in Sol-gel-derived polycrystalline BiFeO  films within a wide
                                                                                            3
                   thickness range. ACS Appl Mater Interfaces 2022;14:21696-704.  DOI
               28.      Zhou Y, Wang C, Tian S, et al. Switchable ferroelectric diode and photovoltaic effects in polycrystalline BiFeO  thin films grown on
                                                                                            3
                   transparent substrates. Thin Solid Films 2020;698:137851.  DOI
               29.      Önal F, Maksutoglu M, Zarbali M, Mikailzade F. Magnetization and magnetic resonance in sol-gel derived polycrystalline BiFeO
                                                                                                         3
                   film. J Magn Magn Mater 2019;477:92-8.  DOI
               30.      Song H, Son JY. Physical properties of Cr-doped epitaxial BiFeO  thin films influenced by ferroelectric domain structures. J Phys
                                                               3
                   Chem Solids 2023;177:111306.  DOI
               31.      Ding J, Guo R, Hu J, et al. Switchable ferroelectric photovoltaic in the low bandgap cobalt-substituted BiFeO  epitaxial thin films.
                                                                                            3
                   Appl Surf Sci 2022;606:154898.  DOI
               32.      Lee JY, Anoop G, Unithrattil S, et al. The role of intermediate S-polymorph towards high piezoelectricity in La-doped BiFeO   3
                   epitaxial thin films. Acta Mater 2021;207:116683.  DOI
               33.      Pei W, Chen J, You D, et al. Enhanced photovoltaic effect in Ca and Mn co-doped BiFeO  epitaxial thin films. Appl Surf Sci
                                                                                  3
                   2020;530:147194.  DOI
               34.      Zhou Z, Sun W, Liao Z, Ning S, Zhu J, Li J. Ferroelectric domains and phase transition of sol-gel processed epitaxial Sm-doped
                   BiFeO  (001) thin films. J Mater 2018;4:27-34.  DOI
                       3
               35.      Lahmar A, Zhao K, Habouti S, Dietze M, Solterbeck C, Es-souni M. Off-stoichiometry effects on BiFeO  thin films. Solid State Ionics
                                                                                       3
                   2011;202:1-5.  DOI
               36.      Wang J, Neaton JB, Zheng H, et al. Epitaxial BiFeO  multiferroic thin film heterostructures. Science 2003;299:1719-22.  DOI
                                                     3
               37.      Rojac T, Bencan A, Malic B, et al. BiFeO  ceramics: processing, electrical, and electromechanical properties. J Am Ceram Soc
                                                3
   146   147   148   149   150   151   152   153   154   155   156