Improvement of microstructures and dielectric properties of coprecipitation iron (Fe)-doped barium titanate
Abstract
Barium titanate (BaTiO3 or BTO) is a famous lead-free ferroelectric material often studied due to its fascinating features for technological applications. However, its performance requires continuous enhancement, one approach being doping with iron (Fe). This study aimed to demonstrate the improvement in the microstructures and dielectric properties of barium titanate induced by iron doping. The barium titanate and iron-doped barium titanate with the formula of BaTi1-xFexO3 (x = 0, 0.01, 0.03, and 0.05) were synthesized using the coprecipitation technique. X-ray diffraction (XRD) analysis confirmed the formation of a pure tetragonal phase in all samples, while Fourier-transform infrared (FTIR) spectroscopy revealed characteristic BTO absorption bands at around 500 cm−1. Compared with pure BTO, Fe-doped samples exhibited increased lattice constants, crystallite sizes, densities, and dielectric constants. Further, the dielectric constants of the samples were also higher than those of undoped barium titanate. These results indicate that Fe doping enhances the microstructures of BTO, leading to improved dielectric performance.
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Adamczyk-Habrajska, M., Wodecka-Dus, B., Goryczka, T., & Makowska, J. (2024). Impedance Spectroscopy of Fe and La-Doped BaTiO3 Ceramics. Crystals, 14(2), 131. doi:10.3390/cryst14020131
Alshoaibi, A., Kanoun, M. B., Ul Haq, B., AlFaify, S., & Goumri-Said, S. (2020). Insights into the Impact of Yttrium Doping at the Ba and Ti Sites of BaTiO(3) on the Electronic Structures and Optical Properties: A First-Principles Study. ACS Omega, 5(25), 15502-15509. doi:10.1021/acsomega.0c01638
Arijun, N., Mahabub, A. B., Mohammad, J. R., & Shamima, C. (2020). Enhanced Dielectric properties of Bismuth Doped Barium Titanate Ceramics with their Structural and Compositional Studies. Biointerface Research in Applied Chemistry, 11(3), 9862-9870. doi:10.33263/briac113.98629870
Bhoyar, D. N., Somvanshi, S. B., Nalle, P. B., Mande, V. K., Pandit, A. A., & Jadhav, K. M. (2020). Multiferroic Fe3+ ion doped BaTiO3 Perovskite Nanoceramics: Structural, Optical, Electrical and Dielectric Investigations. Journal of Physics: Conference Series, 1644(1), 012058. doi:10.1088/1742-6596/1644/1/012058
DeChiara, J. A., Momjian, S., Wang, K., & Randall, C. A. (2024). Bimodal grain sized barium titanate dielectrics enabled under the cold sintering process. Open Ceramics, 19, 100626. doi:10.1016/j.oceram.2024.100626
Fan, J., Long, Z., & Hu, Z. (2021). High dielectric performance and multifarious polarizations in (Lu + Ta) co-doped TiO2 ceramics. Journal of Asian Ceramic Societies, 9(3), 1255-1264. doi:10.1080/21870764.2021.1966919
Iriani, Y., Kusumandari, Ulfa, U., & Sandi, D. K. (2022). Synthesis of BaTiO3 Ceramics Using Coprecipitation and Solid-State Reaction Method with Sintering Temperature Variation. Materials Science Forum, 1064, 89-97. doi:10.4028/p-de85ci
Iriani, Y., Sandi, D. K., Kusumandari, & Sarifah, N. (2023). Investigation of Barium Strontium Titanate (Ba0.95Sr0.05TiO3) synthesized via conventional solid-state reaction and coprecipitation route with diverse sintering temperatures. Materials Today: Proceedings. doi:10.1016/j.matpr.2023.02.229
Iriani, Y., Suherman, B., Sandi, D. K., Nurosyid, F., & Handoko, E. (2024). Microstructure, Atomic Bonds, and Dielectric Characteristics of Neodymium (Nd)-doped Barium Titanate. Evergreen, 11(3), 2063-2070. doi:10.5109/7236851
Iriani, Y., Suherman, B., Sandi, D. K., Nurosyid, F., Khairuddin, Handoko, E., & Faquelle, D. (2024). Structural Modification and Dielectric Property of Bi-Doped BaTiO3 (Ba1-xBixTiO3) Ceramics with coprecipitation Technique. Integrated Ferroelectrics, 240(1), 140-148. doi:10.1080/10584587.2023.2296318
Islam, M. A., Momin, M. A., & Nesa, M. (2019). Effect of Fe doping on the structural, optical and electronic properties of BaTiO3: DFT based calculation. Chinese Journal of Physics, 60, 731-738. doi:10.1016/j.cjph.2019.06.013
Khirade, P. P., Birajdar, S. D., Raut, A. V., & Jadhav, K. M. (2016). Multiferroic iron doped BaTiO3 nanoceramics synthesized by sol-gel auto combustion: Influence of iron on physical properties. Ceramics International, 42(10), 12441-12451. doi:10.1016/j.ceramint.2016.05.021
Kumar, S., Thakur, O. P., & Luthra, V. (2018). Modulating the Effect of Yttrium Doping on the Structural and Dielectric Properties of Barium Titanate. physica status solidi (a), 215(7), 1700710. doi:10.1002/pssa.201700710
Li, Z., Yu, J., Hao, S., & Janolin, P.-E. (2022). Enhancing properties of lead-free ferroelectric BaTiO3 through doping. Journal of the European Ceramic Society, 42(12), 4693-4701. doi:10.1016/j.jeurceramsoc.2022.05.023
More, S., Khedkar, M. V., Kulkarni, G. D., Kadhane, P., Kamble, R., & Jadhav, K. M. (2021). Effect of iron doping on structural, DC electrical resistivity and ferroelectric properties of BaTiO3 nanoceramics. Optik, 247, 167913. doi:10.1016/j.ijleo.2021.167913
Mukherjee, S., Ghosh, S., Ghosh, C., & Mitra, M. K. (2013). Synthesis and Characterization of Iron Doped Nano Barium Titanate Through Mechanochemical Route. Journal of The Institution of Engineers (India): Series D, 94(1), 57-64. doi:10.1007/s40033-013-0019-z
Nayak, P., & Nayak, S. K. (2023). Doping effect of Fe, Co and W on the structural, electrical and magnetic properties of BaTiO3 ferroelectric ceramics. Solid State Communications, 371, 115272. doi:10.1016/j.ssc.2023.115272
Noguchi, Y., & Matsuo, H. (2021). Ferroelectric photovoltaic tensor in visible-light-active Fe-doped BaTiO3single crystals. Japanese Journal of Applied Physics, 60(SF), SFFA01. doi:10.35848/1347-4065/ac0c6c
Padchasri, J., Triamnak, N., Sareein, T., Jutimoosik, J., Tongsaeng, S., Bootchanont, A., . . . Yimnirun, R. (2021). Crystal structure and XANES study of Fe-substituted Barium Titanate ceramics prepared by conventional solid-state technique. Radiation Physics and Chemistry, 188, 109657. doi:10.1016/j.radphyschem.2021.109657
Rajan, S., Gazzali, P. M. M., & Chandrasekaran, G. (2017). Impact of Fe on structural modification and room temperature magnetic ordering in BaTiO(3). Spectrochim Acta A Mol Biomol Spectrosc, 171, 80-89. doi:10.1016/j.saa.2016.07.037
Rayssi, C., El Kossi, S., Dhahri, J., & Khirouni, K. (2018). Frequency and temperature-dependence of dielectric permittivity and electric modulus studies of the solid solution Ca(0.85)Er(0.1)Ti(1-x) Co(4x/3)O(3) (0 </= x </= 0.1). RSC Adv, 8(31), 17139-17150. doi:10.1039/c8ra00794b
Reda, M., El-Dek, S. I., & Arman, M. M. (2022). Improvement of ferroelectric properties via Zr doping in barium titanate nanoparticles. Journal of Materials Science: Materials in Electronics, 33(21), 16753-16776. doi:10.1007/s10854-022-08541-x
Sato, N., Haruta, M., Sasagawa, K., Ohta, J., & Jongprateep, O. (2019). Fe and Co-doped (Ba, Ca)TiO3 Perovskite as Potential Electrocatalysts for Glutamate Sensing. Engineering Journal, 23(6), 265-278. doi:10.4186/ej.2019.23.6.265
Singh, D., Dixit, A., & Dobal, P. S. (2021a). Effect of Structural Changes on the Electrical Properties of Sol-gel derived Iron Doped Barium Titanate. Journal of Physics: Conference Series, 2070(1), 012054. doi:10.1088/1742-6596/2070/1/012054
Singh, D., Dixit, A., & Dobal, P. S. (2021b). Effect of Structural Changes on the Electrical Properties of Sol-gel derived Iron Doped Barium Titanate. Journal of Physics: Conference Series, 2070(1). doi:10.1088/1742-6596/2070/1/012054
Sufiiarov, V., Kantyukov, A., Popovich, A., & Sotov, A. (2021). Structure and Properties of Barium Titanate Lead-Free Piezoceramic Manufactured by Binder Jetting Process. Materials, 14(16), 4419. doi:10.3390/ma14164419
Suherman, B., Nurosyid, F., Khairuddin, Sandi, D. K., & Irian, Y. (2022). Impacts of low sintering temperature on microstructure, atomic bonds, and dielectric constant of barium titanate (BaTiO3) prepared by coprecipitation technique. Journal of Physics: Conference Series, 2190(1), 012006. doi:10.1088/1742-6596/2190/1/012006
Tang, Q., Shi, Z., Xia, S., Bie, X., Yang, Y., Bian, D., . . . Fan, R. (2024). Enhanced dielectric properties of Sr2+ and Zr4+ doped BaTiO3 colossal permittivity metamaterials. EPJ Applied Metamaterials, 11, 13. doi:10.1051/epjam/2024012
Tihtih, M., Limame, K., Ababou, Y., Sayouri, S., & Ibrahim, J.-E. F. M. (2019). Sol-gel synthesis and structural characterization of Fe doped barium titanate nanoceramics. Epitoanyag - Journal of Silicate Based and Composite Materials, 71(6), 190-193. doi:10.14382/epitoanyag-jsbcm.2019.33
Veerapandiyan, V. K., Deluca, M., Misture, S. T., Schulze, W. A., Pilgrim, S. M., & Tidrow, S. C. (2019). Dielectric and structural studies of ferroelectric phase evolution in dipole‐pair substituted barium titanate ceramics. Journal of the American Ceramic Society, 103(1), 287-296. doi:10.1111/jace.16713
Wang, H., & Yang, L. (2023). Dielectric constant, dielectric loss, conductivity, capacitance and model analysis of electronic electroactive polymers. Polymer Testing, 120, 107965. doi:10.1016/j.polymertesting.2023.107965
Wodecka-Dus, B., Kozielski, L., Makowska, J., Bara, M., & Adamczyk-Habrajska, M. (2022). Fe-Doped Barium Lanthanum Titanate as a Competitor to Other Lead-Free Piezoelectric Ceramics. Materials (Basel), 15(3), 1089. doi:10.3390/ma15031089
Xiong, P., Xiao, M., Yao, Z., Liu, H., & Hao, H. (2024). Improving the Energy Storage Performance of Barium Titanate-Based Ceramics through the Addition of ZnO-Bi2O3-SiO2 Glass. Crystals, 14(3). doi:10.3390/cryst14030242
Yulianingsih, A., & Munasir. (2016). Analisis Komposit Fe3O4/c-SiO2 dari Pasir Talaud Lumajang. Jurnal Inovasi Fisika Indonesia, 5(2), 5-8.
Zechao Li, J. Y., Shenglan Hao, Pierre-Eymeric Janolin. (2022). Enhancing properties of lead-free ferroelectric BaTiO3 through doping. Journal of the European Ceramic Society,, 42(12), 4693-4701. doi:10.1016/j.jeurceramsoc.2022.05.023
Zhang, N., Yao, Z., Hao, H., Cao, M., & Liu, H. (2022). Selectively designed Fe doping of lead-free BaTiO3 piezoceramics. Journal of Materials Science: Materials in Electronics, 33(13), 10154-10164. doi:10.1007/s10854-022-08005-2
Zhou, L., Zhang, Y., Li, S., Lian, Q., Yang, J., Bai, W., & Tang, X. (2020). Fe doping effect on the structural, ferroelectric and magnetic properties of polycrystalline BaTi1−xFexO3 ceramics. Journal of Materials Science: Materials in Electronics, 31(17), 14487-14493. doi:10.1007/s10854-020-04008-z
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