• Journal of Inorganic Materials
  • Vol. 38, Issue 11, 1364 (2023)
Maoxin SU1,2, Xinchen LI1, Kainan XIONG2, Sheng WANG2..., Yunlin CHEN1,*, Xiaoniu TU2,* and Erwei SHI2|Show fewer author(s)
Author Affiliations
  • 11. Institute of Applied Micro-Nano Materials, School of Science, Beijing Jiaotong University, Beijing 100049, China
  • 22. Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China
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    DOI: 10.15541/jim20230101 Cite this Article
    Maoxin SU, Xinchen LI, Kainan XIONG, Sheng WANG, Yunlin CHEN, Xiaoniu TU, Erwei SHI. Characterization of High Temperature Resistivity and Full Matrix Material Coefficient of LGT Crystals[J]. Journal of Inorganic Materials, 2023, 38(11): 1364 Copy Citation Text show less
    References

    [1] H P YANG, X F ZHOU, H J FANG et al. Study on field-induced strain properties of sodium bismuth titanate based lead-free ferroelectric ceramics. Journal of Inorganic Materials, 603(2022).

    [2] Z Q WEI, X XIA, Q LI et al. Preparation and properties of barium titanate/calcium silicate composite bioactive piezoelectric ceramics. Journal of Inorganic Materials, 617(2022).

    [3] B NAN, J D ZANG, W L Lu et al. Research progress in manufacturing piezoelectric ceramics with additives. Journal of Inorganic Materials, 585(2022).

    [4] J BARDONG, G BRUCKNER, M KRAFT et al. Influence of Packaging Atmospheres on the Durability of High-temperature SAW Sensors. IEEE International Ultrasonics Symposium, Rome, Italy, 1680(2009).

    [5] S TIAN, L Li, X Lu et al. Electrical conduction mechanism of rare-earth calcium oxyborate high temperature piezoelectric crystals. Acta Materialia, 165(2020).

    [6] K LUCAS, S BOUCGY, P BELANGER et al. High-temperature electrical conductivity in piezoelectric lithium niobate. Journal of Applied Physics, 194102(2022).

    [7] H OGI, N NAKAMURA, K SATO et al. Elastic, anelastic, and piezoelectric coefficients of langasite: resonance ultrasound spectroscopy with laser-Doppler interferometry. IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, 553(2003).

    [8] S VIJAY. Defect Chemistry and DFT Modelling of La3Ta0.5Ga5. 5O14. Oslo, Norway: University of Oslo Department of Chemistry(2013).

    [9] S J ZHANG, H K KONG, R XIA et al. Growth and high- temperature electromechanical properties of Ca3NbX3Si2O14 (X= Ga and Al) piezoelectric crystals. Solid State Communications, 435(2010).

    [10] X Z SHI, D R YUAN, X YIN et al. Crystal growth and dielectric, piezoelectric and elastic properties of Ca3TaGa3Si2O14 single crystal. Solid State Communications, 173(2007).

    [11] H SEH, H L TULLER, H FRITZE. Langasite for high-temperature acoustic wave gas sensors. Sensors and Actuators B: Chemical, 169(2003).

    [12] H FRITZE, H SEH, H L TULLER et al. Operation limits of langasite high temperature nanobalances. Journal of the European Ceramic Society, 1473(2001).

    [13] K N XIONG, Y Q ZHENG, X N TU et al. Growth and high temperature properties of Ca3Ta(Al0. 9Ga0.1)3Si2O14 crystals with ordered langasite structure. Journal of Crystal Growth, 820(2014).

    [14] L G TANG, M H ZHUANG, H LI. Application of ultrasonic resonance spectroscopy in characterization of piezoelectric materials. Journal of Shaanxi Normal University (Natural Science Edition), 44(2019).

    [15] H TAKEDA, S TANAKA, S LZUKAWA et al. Effective substitution of aluminum for gallium in langasite-type crystals for a pressure sensor use at high temperature. IEEE International Ultrasonics Symposium. Rotterdam, 560(2005).

    [16] T S BJORHEIM, V SHANMUGAPPIRABU, R HAUGSRUD et al. Protons in piezoelectric langatate: La3Ga5.5Ta0.5O14. Solid State Ionics, 275(2015).

    [17] I M ANFIMOV, O A BUZANOV, A P KOZLOVA et al. Impedance spectroscopy study of lanthanum-gallium tantalate single crystals grown under different conditions. Modern Electronic Materials, 41(2019).

    [18] M D MALINKOVICH, Y N PARKHOMENKO, E A SKRYLEVA et al. XPS study of gallium loss from langasite crystal surface under vacuum annealing. Sensors and Actuators A: Physical, 63(2012).

    [19] M JOSEPH, H TABATA, H SAEKI et al. Fabrication of the low- resistive p-type ZnO by codoping method. Physica B: Condensed Matter, 140(2001).

    Maoxin SU, Xinchen LI, Kainan XIONG, Sheng WANG, Yunlin CHEN, Xiaoniu TU, Erwei SHI. Characterization of High Temperature Resistivity and Full Matrix Material Coefficient of LGT Crystals[J]. Journal of Inorganic Materials, 2023, 38(11): 1364
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