[1] YE Jingjing,GONG Hanyu,ZHANG Yan,et al. Piezoelectric ceramics with hierarchical macro- and micro-pore channels for sensing applications[J]. Additive Manufacturing,2024,79:103915.
[2] KIM D H,LEE T G,CHO S H,et al. Piezoelectric properties of (Na1-xKx)NbO3-based lead-free piezoelectric ceramics and their application in knocking sensor[J]. Journal of the American Ceramic Society,2017,100(12) :5367-5373.
[3] GUO Qinghu,WANG Pengbin,MENG Xiangyu,et al. Low-temperature sintering Sm-doped PMN-PZ-PT multilayer ceramic actuator with high strain and temperature stability[J]. Journal of the American Ceramic Society,2024,107(5):3329-3338.
[4] HU Xiaopin,CAO Teng,WANG Boquan,et al. A low-cost multilayer piezoelectric actuator for ultrasonic motor stator driving fabricated by a low-temperature co-fired ceramic process[J]. Ceramics International,2023,49(4):6119-6124.
[5] JIA Hongrui,YANG Shuai,ZHU Weitong,et al. Improved piezoelectric properties of Pb(Mg1/3Nb2/3)O3-PbTiO3 textured ferroelectric ceramics via Sm-doping method[J]. Journal of Alloys and Compounds,2021,881:160666.
[6] YIN Jie,WONG V K,XU Qinwen,et al. Conformable shear mode transducers from lead-free piezoelectric ceramic coatings: An innovative ultrasonic solution for submerged structural health monitoring[J]. Advanced Functional Materials,2024,34(32): e2401544.
[7] YAN Mingyang,LIU Shengwen,XU Qianqian,et al. Enhanced energy harvesting performance in lead-free multi-layer piezoelectric composites with a highly aligned pore structure[J]. Nano Energy,2023,106:108096.
[8] XUE Haoyue,JIANG Laiming,LU Gengxi,et al. Multilevel structure engineered lead-free piezoceramics enabling breakthrough in energy harvesting performance for bioelectronics[J]. Advanced Functional Materials,2023,33(11): e2212110.
[10] ARYA K S,KALYANI A K,CHAKRABARTI T. Flash sintering of lead zirconate titanate (PZT) with minimal lead oxide loss and enhanced dielectric properties[J]. Journal of the European Ceramic Society,2024,44(5):2797-2810.
[11] BIAN Lang,LI Zhanmiao,QI Xudong,et al. Low-temperature sintered PMnS-PZT multilayer-ceramic for nano-step piezomotor application[J]. Sensors and Actuators A,2022,345:113812.
[12] BABU T A,MADHURI W. Microwave synthesis technique for LTCC and colossal dielectric constant in PZT[J]. Chemical Physics Letters, 2022, 799:139641.
[13] GUPTA S,WANG D,RANDALL C A,et al. Comparison of different sintering aids in cold sinter-assisted densification of lead zirconate titanate[J]. Journal of the American Ceramic Society,2021,104(11):5479-5488.
[14] LI Guohao,WANG Qian,CHEN Juannan,et al. Spark plasma sintering of sodium bismuth niobate that exhibits superior piezoelectric performance[J]. Journal of the American Ceramic Society,2024,107(11):7364-7372.
[15] WANG Zheng,SUN Yuxuan,MAN Zhenyong,et al. Competition of Li+ and Cu2+ ions dopant in BiAlO3-Pb(Zr, Ti)O3 piezoelectric ceramics in low temperature sintering processes[J]. Ceramics International,2023,49(23):37167-37173.
[17] MAZUMDER R,SEN A. ‘Ultra’-low-temperature sintering of PZT:A synergy of nano-powder synthesis and addition of a sintering aid[J]. Journal of the European Ceramic Society, 2008, 28(14):2731-2737.
[18] ZHANG Jing,ZHANG Yuansong,YAN Zhoumin,et al. Fabrication and performance of PNN-PZT piezoelectric ceramics obtained by low-temperature sintering[J]. Science and Engineering of Composite Materials,2020,27(1):359-365.
[19] SANDI D K,SUPRIYANTO A,JAMALUDDIN A,et al. The effects of sintering temperature on dielectric constant of Barium Titanate (BaTiO3)[J]. IOP Conference Series: Materials Science and Engineering,2016,107(1):012069.
[20] LEU C C,CHEN C Y,CHIEN C H,et al. Domain structure study of SrBi2Ta2O9 ferroelectric thin films by scanning capacitance microscopy[J]. Applied Physics Letters,2003,82(20):3493-3495.
[21] LUO Xiaogang,YAN Zhongna,LUO Hang,et al. Greatly improved piezoelectricity and thermal stability of (Na, Sm) Co-doped CaBi2Nb2O9 ceramics[J]. Advanced Powder Materials,2023,2(3):100116.