СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3

Solid solutions of Al-doped lithium lanthanum titanates La0.67LixTi1-xAlxO3 system (where 0.15 ≤ x ≤ 0.3) have been synthesized by solid-state reaction technique. Light optical microscopy has shown that the grain size of La0.67LixTi1-xAlxO3 ceramic...

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Date:2020
Main Authors: Plutenko, Tatiana, V'yunov, Oleg, Khomenko, Boris, Belous, Anatolii
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Language:English
Published: V.I.Vernadsky Institute of General and Inorganic Chemistry 2020
Online Access:https://ucj.org.ua/index.php/journal/article/view/254
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Ukrainian Chemistry Journal
_version_ 1871465644569919488
author Plutenko, Tatiana
V'yunov, Oleg
Khomenko, Boris
Belous, Anatolii
author_facet Plutenko, Tatiana
V'yunov, Oleg
Khomenko, Boris
Belous, Anatolii
author_institution_txt_mv [ { "author": "Tatiana Plutenko", "institution": "V.I. Vernadsky Institute of General and Inorganic Chemistry of National Academy of Sciences of Ukraine" }, { "author": "Oleg V'yunov", "institution": "V. I. Vernadsky Institute of General and Inorganic Chemistry" }, { "author": "Boris Khomenko", "institution": "V.I. Vernadsky Institute of General and Inorganic Chemistry of National Academy of Sciences of Ukraine" }, { "author": "Anatolii Belous", "institution": "V.I. Vernadsky Institute of General and Inorganic Chemistry of National Academy of Sciences of Ukraine" } ]
author_sort Plutenko, Tatiana
baseUrl_str https://ucj.org.ua/index.php/journal/oai
collection OJS
datestamp_date 2026-07-22T08:23:45Z
description Solid solutions of Al-doped lithium lanthanum titanates La0.67LixTi1-xAlxO3 system (where 0.15 ≤ x ≤ 0.3) have been synthesized by solid-state reaction technique. Light optical microscopy has shown that the grain size of La0.67LixTi1-xAlxO3 ceramics insignificantly increases with an increase in lithium/aluminum concentration. The materials La0.67LixTi1-xAlxO3 show very high dielectric permittivity ε΄ 104 over a relatively wide frequency range (102 ≤ f ≤ 104 Hz) with no apparent dependence on the x. The impedance spectroscopy study indicates three semicircles on Cole-Cole diagram that can be attributed to electrically different areas of ceramic’s grain.
doi_str_mv 10.33609/2708-129X.86.11.2020.13-23
first_indexed 2025-09-24T17:43:35Z
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fulltext 13 UDC: 549.641.1; 661.8; 621.315.61; 621.317 doi: 10.33609/2708-129X.86.11.2020.13-23 SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.67LixTi1-xAlxO3 (0.15≤x≤0.3) CERAMICS T. O. Plutenko, O. I. V’yunov *, B. S. Khomenko, A. G. Belous V. I. Vernadsky Institute of General and Inorganic Chemistry, Akademik Palladin Avenue 32/34, Kyiv 03142 Ukraine E-mail: vyunov@ionc.kiev.ua ABSTRACT. Solid solutions of Al-doped lithium lanthanum titanates La0.67LixTi1-xAlxO3 system (where 0.15  ≤  x  ≤  0.3) have been synthesized by solid-state reaction technique. Light optical microscopy has shown that the grain size of La0.67LixTi1-xAlxO3 ceramics in- significantly increases with an increase in lithium/aluminum concentration. The materials La0.67LixTi1-xAlxO3 show very high dielectric permittivity ε΄>  104 over a relatively wide fre- quency range (102 ≤ f ≤ 104 Hz) with no apparent dependence on the x. The impedance spec- troscopy study indicates three semicircles on Cole-Cole diagram that can be attributed to electrically different areas of ceramic’s grain. Key words: solid solution, lithium-lanthanum titanate-aluminate, complex impedance, dielectric properties. INTRODUCTION. Materials with per- ovskite-related structure (ABO3) are inter- esting candidates for a great variety of appli- cations [1, 2]. The compounds of general for- mula La2/3-xLi3xTiO3 the material substrate for making good ionic conductors [3, 4] and, in particular, lithium has been shown to move in some perovskite systems faster than in any other materials [5, 6]. A large amount of re- search has been focused on the Ti cation sub- stitution in the La2/3-xLi3xTiO3 system (in par- ticular, at x=1/6, La0.5Li0.5TiO3) by other me tal ions with less tendency toward reduction against Li metal. Simultaneous lithium addi- tion and titanium substitution by aluminum in the system La2/3LixTi1-xAlxO3 has been in- vestigated in work [7–10]. Crystal structure of high temperature La2/3LixTi1-xAlxO3 phase with 0.06  ≤  x  ≤  0.2 annealed and quenched from 1273 K was determined [11–13]. Depending on the cooling conditions, the structure can be a perovskite-related orthorhombic or rhombo- hedral. In the case of an orthorhombic struc- ture, the formation of a superstructure of the basic perovskite is due to two mechanisms: the tilting of octahedra (Ti/Al)O6 and the ordering of La3+ and Li+. The lithium ions are not located at the interstitial A positions of the perovskite structure and their coordination polyhedra is a square pyramid with lithium ion at the apex. Therefore, there is a large amount of non-oc- cupied interstitial positions of this kind for the INORGANIC CHEMISTRY SYNTHESIS AND DIELECTRIC PROPERTIES OF LA0.67LIXTI1-XALXO3 (0.15≤X≤0.3) CERAMICS 14 ISSN 2708-129X. Укр. хім. журн., 2020 lithium ions to move to, and this is likely to be the reason for the very high ionic conductivity of these kinds of materials (~ 8·105 S/cm for the oxide with x = 0.25) [12]. In the case of a rhom- bohedral structure [11, 14] twisting of TiO6 oc- tahedra is observed in the structure in order to optimize the distances between oxygen and lanthanum ions. Lithium ions are bonded to four oxygen atoms in a square configuration. This environment for Li is different from the tetrahedral-like coordination. Another interesting property of the La2/3Lix- Ti1-xAlxO3 oxides is their dielectric beha vior. The authors recently reported a “giant” barrier layer capacitance effect in La0.67Li0.25 Ti0.75Al0.25O3 [9]. It has been demonstrated that the origin of the high dielectric constant (ε = 2·105, tg δ=0.5 for La0.67Li0.2Ti0.8Al0.2O3 and ε =5·105, tg δ=0.5 for La0.67Li0.25Ti0.75Al0.25O3 at 10 ≤ f ≤ 103 Hz) can be attributed to a barrier layer capacitor associated with grain boundary effects in the ion-conducting material [8]. However, dielectric behavior was investigat- ed only for an orthorhombic structure sintered with subsequent quenching. While for the practically important case, when the material is obtained by slow cooling and has a rhombo- hedral structure, dielectric behavior remains unexplored. Therefore, in this work for the first time die- lectric properties of partially substituted com- plex low-temperature phase La0.67LixTi1-xAlxO3 (where 0.15  ≤  x  ≤  0.3) solid solutions with rhombohedral crystal structure have been in- vestigated. For this, impedance spectroscopy data, recorded at room temperature, have been analyzed. Light optical microscopy has been finally used to analyze the influence of lithi- um/aluminum concentration on the micro- structure of these perovskites. For comparison, La0.5Li0.5TiO3 sample, which has a larger num- ber of lithium ions in the structure was inves- tigated. EXPERIMENTAL SECTION. Samples were obtained from stoichiometric amounts of dried Li2CO3 (Merck), Al2O3 (Merck), La2O3 (Aldrich 99.99%), and TiO2 (Aldrich 99 %) by solid-state reaction technique. Li2CO3 was dried at 300  ºC, La2O3 at 800  ºC and Al2O3, TiO2 at 600 ºC. The mixtures were ground in an agate mortar with acetone, and calcined in air for 6 h at 1200 ºC. The rate of temperature increase was 200  ºC/hour. The phases were characterized by X-ray powder diffractometry (XRPD) using DRON-4-07 diffractometer (Cu Kα radiation, λ = 1.54178 Å; 40 kV, 20 mA). The unit cell parameters of the samples were determined using FullProf software by the whole-pattern profile-matching Le Bail proce- dure [15]. The calcined powders were ground and pressed into pellets with a diameter of 8 mm and a thickness of 2 mm under a pres- sure of 500 kg/cm2 (50MPa). The pellets were sintered at 1270–1300 ºC depending on Li/Al content (6 h) and were cooled to air tempera- ture with a cooling rate 200 ºC/h. Finally, sam- ples with 1 mm thickness were cut out from prepared raw ceramic. Grain sizes of ceramic samples of La0.67Lix- Ti1-xAlxO3 (0.15  ≤  x  ≤  0.3) system were deter- mined using an optical microscope LOMO MBS-10. Using a semi-automatic computer pro- gram imageJ [16] the area of the grain was meas- ured, mathematically found the nominal diam- eter, equating the resulting area to the area of the circle. The average value of the measured nom- inal grain diameters was considered the nomi- nal diameter of the characteristic grain. At least 50 grains were measured from three different areas [17]. Sintered cylindrical pellets 8 mm in UCJ № 11 / Vol. 86T. O. Plutenko, O. I. V’yunov, B. S. Khomenko, A. G. Belous 15https://ucj.org.ua diameter and 2 mm thick, with evaporated me tal electrodes, were used for electrical measure ments. Impedance spectroscopy measurements were conducted using a 1260 Impedance  / Gain phase Analyzer (Solartron Analytical). RESULTS AND DISCUSSION. It has been shown that single-phase solid solutions La0.67LixTi1-xAlxO3 (where 0.15  ≤  x  ≤  0.3) are formed at temperatures above 1200 ºC using solid-state reaction technique. Fig. 1. Experimental (dots) and calculated (line) room-tem- perature powder X-ray powder diffraction patterns of ceramic samples La0.67Li0.3Al0.3Ti0.7TiO3 sintered at 1300 ºC for 2 h. Bars indicate the peak positions. The unit cell parameters were deter- mined from the XRPD patterns using a rapid whole-pattern profile-matching Le Bail proce- dure (Fig. 1). La0.67LixTi1-xAlxO3 solid solutions (where 0.15 ≤ x ≤ 0.3) materials have a rhom- bohedral perovskite-related structure (space group R-3c, № 167). In XRPD spectra addi- tional lines of small amount La0.67LixTi1-xAlxO3 with tetragonal phase symmetry (space group P4/mmm, № 123) are observed. The phases observed do not differ in chemical composi- tion. The main difference between these phases is in the crystal structure. Unit cell parameters depend on Li/Al concentration (Fig. 2). Fig. 2 shows the dependence of the unit cell volume of the samples La0.67LixTi1-xAlxO3 sys- tem sintered at 1300 ºC for 2 h. For the sam- ple x = 0 the data given in [18] was used. The dependence is linear and obeys Vegard’s law, which indicates the formation of a continuous series of solid solutions in La0.67LixTi1-xAlxO3 (0.15  ≤  x  ≤  0.3). Unit cell volume decreases with an increase in x, due to the difference in ionic radii of aluminum and titanium. Fig. 2. Unit cell volume of La0.67LixTi1-xAlxO3 solid solutions sintered at 1300 ºC for 2 h. INORGANIC CHEMISTRY SYNTHESIS AND DIELECTRIC PROPERTIES OF LA0.67LIXTI1-XALXO3 (0.15≤X≤0.3) CERAMICS 16 ISSN 2708-129X. Укр. хім. журн., 2020 Fig. 3. Optical microscope imag- es of La0.67LixTi1-xAlxO3 ceramics, where x=0.15 (a), 0.2 (b), 0.25 (c), 0.3 (d). The ceramic’s size and morphology of La0.67LixTi1-xAlxO3 were studied by light optical microscopy (Fig. 3). It has been shown in Fig. 3 that with an increase in x, the average grain size slightly increases from 6.1 μm (x=0.15) to 7.7 μm (x=0.3). This fact can be attributed to an increase in sintering temperature with an in- crease in Li/Al content. The boundary between one grain and another is a defect in the crystal structure and so it is associated with a certain amount of energy [19]. As a result, there is a thermodynamic driving force for the total area of boundary to be reduced. With sintering tem- perature growth in La0.67LixTi1-xAlxO3 grain size UCJ № 11 / Vol. 86T. O. Plutenko, O. I. V’yunov, B. S. Khomenko, A. G. Belous 17https://ucj.org.ua increases accompanied by a reduction in the number of grains, therefore the total area of the grain boundary is reduced. a b Fig. 4. Complex impedance diagram of La0.67Li0.2 Ti0.8Al0.2O3 (a) and La0.5Li0.5TiO3 (b) at room tem- perature. The results of the frequency investigation of La0.67LixTi1-xAlxO3 ceramics can be analyzed as four types of dependencies: complex impe dance (Z*), complex admittance (Y*), com- plex permittivity (ε*), and complex electric modulus (M*) [20–22]. These complex quan- tities are interrelated: M* = 1/ε* = jωCoZ* = jωCo(1/Y*), where ω is the angular frequency and Co is the capacitance of empty cell (where j = -1). Initially, the results of the frequency in- vestigation of PTCR materials were obtained as Z’’ = f(Z’) relations (Fig. 4a). There are three sem- icircles on the complex impedance diagram at room temperature for La0.67Li0.2Ti0.8Al0.2O3 solid solution. For comparison, we present impedance dia- grams of La0.5Li0.5TiO3. Fig. 4b shows the com- plex impedance diagram at room temperature for the La0.5Li0.5TiO3. One semicircle depressed below the real axis, part of a second semicir- cle, and a spike at the lowest frequencies are observed. The arc at the highest frequencies is presented in the inset of Fig. 4b. The appearance of three semicircles in the Cole-Cole plots indicates that there are three relaxation mechanisms, which may be due to grain, grain boundary, and electrode polar- ization. Generally, the arc at high frequen- cy refers to bulk, at low frequency refers to electrode polarization, and middle-frequency area - to grain boundary. The good separa- tion of these semicircles in La0.67LixTi1-xAlxO3 is ascribed to the small pore size. If the pore size is greater than 1 µm, it would lead to the overlapping of the semicircles like in La0.5Li0.5 TiO3 [8]. The dielectric constant was calculated from an impedance measurement. Fig. 5 shows di- electric constant (Fig. 5a) and dielectric loss (Fig. 5b) versus frequency at room tempe rature. All La0.67LixTi1-xAlxO3 samples have a high dielectric constant value ε′  >  105 at low frequencies (f ≤ 10 Hz). These values are close for ones of the samples of the orthor- hombic high-temperature phases La0.67Li0.2 Ti0.8Al0.2O3 and La0.67Li0.25Ti0.75Al0.25O3 [9, 10]. Whereas it has been shown that La0.5Li0.5TiO3 sample has a high ε′ > 104 at low frequencies (f ≤ 10 Hz). INORGANIC CHEMISTRY SYNTHESIS AND DIELECTRIC PROPERTIES OF LA0.67LIXTI1-XALXO3 (0.15≤X≤0.3) CERAMICS 18 ISSN 2708-129X. Укр. хім. журн., 2020 Fig. 5. Dielectric constant (a) and dielectric loss tangent (b) of La0.67LixTi1-xAlxO3 at x = 0.15 (1), 0.20 (2), 0.25 (3), 0.3 (4) and La0.5Li0.5TiO3 (5). Transport of Li ions in La0.5Li0.5TiO3 occurs via vacancies in the A-site of the perovskite ABO3 structure. Lithium ions are believed to move transport through the so-called struc- tural conduction channels, i.e. “bottlenecks” formed by oxygen ions. Li ions are located at the center of the square planar windows con- necting contiguous oxygen sites (Fig. 6). [14]. The high value of the dielectric constant for the La0.67LixTi1-xAlxO3 is attributed to the mo- tion of charge carriers (Li ions) both inside and between unit cells. It should be noted that lithium ion’s movement can contribute to both ionic conductivity and polarization. When lithium ions move from one electrode to another, such motion contributes to ionic conductivity. At the same time, if the motion of lithium ions in structural channels is limit- ed, for example by lanthanum ions, then such displacements of lithium ions contribute to polarization. In complex perovskites, the A-sites are shared by ions of very different sizes such as La3+ and Li+ and vacancies whereas the B-sites are also shared by ions of different charges and sizes (Fig. 6). Fig. 6. Schematic representation of the dif- ference in the rhombohedral and orthorhombic La0.67LixTi1xAlxO3 structure. La ions occupy A sites, while Li ions are lo- cated at the A-cage faces of the perovskite. The Li+ ions present a distorted square planar coor- dination and are located in interstitial positions of the structure, which could explain the very high ionic conductivity of this type of material [11]. The very high dielectric constant of this type of material seems to be related to the loca- tion of the lithium atoms within the interstitial positions, providing a great number of sites for the atoms to move through. Compared with the La0.5Li0.5TiO3, compositions of the La0.67Lix- UCJ № 11 / Vol. 86T. O. Plutenko, O. I. V’yunov, B. S. Khomenko, A. G. Belous 19https://ucj.org.ua Ti1-xAlxO3 system have a lower number of Li+ and a bigger number of structural vacancies. These conditions cause a lower possibility for Li+ - VLi+ interactions and enhanced opportu- nities for Li+ movement. That is why materials synthesized have a higher dielectric constant than the conventional La0.5Li0.5TiO3. It should be noted that the dielectric con- stant and dielectric loss tangent slightly de- pends on the content of lithium and aluminum in La0.67LixTi1-xAlxO3 system. CONCLUSIONS. It has been shown that single-phase solid solutions La0.67LixTi1-xAlxO3 (0.15 ≤ x ≤ 0.3) synthesized by solid-state re- action technique are formed at temperatures higher than 1200 °C. The dielectric properties of ceramic materials have been studied by im- pedance spectroscopy. Using light optical mi- croscopy shown that the grain size of ceramics in La0.67LixTi1-xAlxO3 system slightly increases from 6.1 μm (x=0.15) to 7.7 μm (x=0.3). Ma- terials exhibit high dielectric constant values (ε ~ 4·105 at 1 Hz) in all ceramic samples that can be explained by the high ionic conduc- tivity of this material. The materials synthe- sized in La0.67LixTi1-xAlxO3 system have a high- er dielectric constant than the conventional La0.5Li0.5TiO3. The dielectric losses increase with increasing lithium concentration that can be attributed to the fact that the size of the structural domains decreases with increasing the annealing temperature. ACKNOWLEDGEMENTS. The work was supported by the Research program of the Ukrainian National Academy of Scienc- es “New functional substances and materials for chemical production” (Fine Chemicals), project № 0119U101351. СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3 Т. О. Плутенко, О. І. В’юнов *, Б. С. Хоменко, А. Г. Білоус Інститут загальної та неорганічної хімії ім. В. І. Вернадського * e-mail: vyunov@ionc.kiev.ua Показано, що однофазні тверді розчини в системі La0,67LixTi1-xAlxO3 в концентрацій- ному інтервалі 0,15 ≤ x ≤ 0,3, синтезовані методом твердофазних реакцій, утворю- ються за температур вище 1200 ºC. Тверді розчини La0,67LixTi1-xAlxO3 (де 0,15 ≤ x ≤ 0,3) мають ромбоедричну структуру перовскі- ту. Параметри елементарної комірки зале- жать від концентрації Li/Al. Із ростом концентрації х об’єм елемен- тарної комірки лінійно зменшується через різницю в іонних радіусах алюмінію та титану. Ця залежність підпорядковуєть- ся закону Вегарда, що вказує на утворен- ня неперервного ряду твердих розчинів La0,67LixTi1-xAlxO3 (де 0,15 ≤ x ≤ 0,3). Методом оптичної спектроскопії було показано, що розмір зерен кераміки La0,67LixTi1-xAlxO3 незначно зростає зі збіль- шенням концентрації літію/алюмінію. Цей факт можна пояснити підвищенням тем- ператури спікання зі збільшенням. Зі зрос- танням температури спікання в La0,67LixTi1-x AlxO3 збільшується розмір зерен, що су- проводжується зменшенням кількості зе- рен, отже, загальна площа границь зерен зменшується. Дослідження за допомогою методу комплексного імпедансу продемон- стрували три півкола на діаграмі Коул – INORGANIC CHEMISTRY SYNTHESIS AND DIELECTRIC PROPERTIES OF LA0.67LIXTI1-XALXO3 (0.15≤X≤0.3) CERAMICS 20 ISSN 2708-129X. Укр. хім. журн., 2020 Коула, які можна віднести до електрично неоднорідних за властивостями ділянок зе- рен кераміки. Поява трьох напівкіл на діа- грамах Коул – Коула вказує на те, що існує три механізми релаксації. Напівколо за ви- сокої частоти належить до об’ємної частини зерна, на низькій частоті – до поляризації електродів, а область середньої частоти – до властивостей границі зерен. Діелектрич- ну проникність розраховували за даними вимірювань комплексного імпедансу. По- казано, що зразки системи La0,67LixTi1-xAlxO3 мають велике значення діелектричної проникності ε΄>  105 на низьких частотах (f ≤ 10 Hz). Водночас зразок La0,5Li0,5TiO3 має високий значення діелектричної проник- ності ε΄> 104 на низьких частотах (f ≤ 10 Гц), що можна пояснити високою іонною про- відністю цього матеріалу. Синтезовані мате- ріали, леговані алюмінієм La0,67LixTi1-xAlxO3, мають вищу діелектричну проникність, ніж La0,5Li0,5TiO3. Діелектричні втрати зро- стають зі збільшенням концентрації літію у La0,67LixTi1-xAlxO3, що можна пояснити змен- шенням розмірів структурних доменів зі збільшенням температури відпалу. Ключові слова: твердий розчин, тита- нат-алюмінат літію-лантану, комплексний імпеданс, діелектричні властивості. ЛИТЕРАТУРА 1. Оксидные литийпроводящие твердые электролиты. / Белоус А. Г., Кобилян ская  С.  Д. ‒ К.: Наукова думка, 2018. ‒ 319 с. ISBN: 978-966-00-1614-9. 2. Belous A. G. 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Á., Gi- ant barrier layer capacitance effects in the lithium ion conducting material La0.67Li0.25 Ti0.75Al0.25O3. Appl. Phys. Lett. 2005, 86 (6), 043110. https://doi.org/10.1063/1.1852717. 10. García-Martín, S.; Morata-Orrantia, A.; Alario-Franco, M. Á., Influence of the crystal microstructure on the dielectric re- sponse of the La0.67Li0.2Ti0.8Al0.2O3. J.  Appl. Phys. 2006, 100 (7), 054101. https://doi. org/10.1063/1.2221528. 11. Rivera, A.; León, C.; Santamaría, J.; Vá rez, A.; V’yunov, O.; Belous, A.; Alonso, J.; UCJ № 11 / Vol. 86T. O. Plutenko, O. I. V’yunov, B. S. Khomenko, A. G. Belous 23https://ucj.org.ua Sanz, J., Percolation-Limited Ionic Diffu- sion in Li0.5-xNaxLa0.5TiO3 Perovskites (0 ≤ x ≤ 0.5). Chem. Mater. 2002, 14 (12), 5148- 5152. https://doi.org/10.1021/CM0204627. 12. Amador, U.; García-Martín, S.; Mor- ata-Orrantia, A.; Rodríguez-Carvajal, J.; Alario-Franco, M. Á., Structure and Microstructure Study of Oxides of the La2/3-xLi3xTiO3-family. MRS Online Proceed- ings Library Archive 2008, 1126, S14-06. 13. García-Martín, S.; Morata-Orrantía, A.; Alario-Franco, M.; Rodríguez-Carvajal, J.; Amador, U., Beyond the structure-proper- ty relationship paradigm: influence of the crystal structure and microstructure on the Li+ conductivity of La2/3LixTi1-xAlxO3 ox- ides. Chemistry. A European Journal 2007, 13 (19), 5607. https://doi.org/10.1002/ chem.200700235. 14. Alonso, J. A.; Sanz, J.; Santamaría, J.; León, C.; Várez, A.; Fernández‐Díaz, M. T., On the location of Li+ cations in the fast Li‐ cation conductor La0.5Li0.5TiO3 perovskite. Angew. Chem. 2000, 112 (3), 633-635. https://doi.org/10.1002/(SICI)1521-3773 (20000204)39:3<619::AID-ANIE619>3.0. CO;2-O. 15. Le Bail, A., Whole powder pattern decom- position methods and applications: A ret- rospection. Powder Diffr. 2005, 20 (4), 316- 326. https://doi.org/10.1154/1.2135315. 16. Collins, T. J., High-content screening. Bio- Techniques 2007, 43 (1), 25-29. https://doi. org/10.2144/000112517. 17. AENOR, ISO 13383-1:2016 Fine ceramics (advanced ceramics, advanced technical ceramics) - Microstructural characteriza- tion - Part 1: Determination of grain size and size distribution (ISO 13383-1:2012). International Organization for Standardi- zation: Geneva, Switzerland, 2016; p 29. 18. Yokoyama, M.; Ota, T.; Yamai, I.; Taka- hashi, J., Flux growth of perovskite-type La2/3TiO3‑x crystals. J. Cryst. Growth 1989, 96 (3), 490-496. https://doi.org/10.1016/0022- 0248(89)90043-2. 19. Rahaman, M. N., Ceramic processing. Kirk‐Othmer Encyclopedia of Chemical Technology 2000, 1-98. https://doi.org/10. 1002/0471238961.0305180105231921.a01. pub2. 20. Morrison, F. D.; Sinclair, D. C.; West, A. R., Characterization of lanthanum‐doped ba rium titanate ceramics using impedance spectroscopy. J. Amer. Ceram. Soc. 2001, 84 (3), 531-538. https://doi.org/10.1111/ j.1151-2916.2001.tb00694.x. 21. Morrison, F. D.; Sinclair, D. C.; West, A. R., An Alternative Explanation for the Origin of the Resistivity Anomaly in La‐Doped BaTiO3. J. Amer. Ceram. Soc. 2001, 84 (2), 474-76. https://doi.org/10.1111/j.1151-2916. 2001.tb00684.x. 22. Abram, E. J.; Sinclair, D. C.; West, A. R., A strategy for analysis and modelling of impedance spectroscopy data of electroce- ramics: doped lanthanum gallate. J. Electro- ceram. 2003, 10 (3), 165-177. https://doi. org/10.1023/B:JECR.0000011215.56084.87. 23. Gangadharudu, D.; Babu, Y. N. C. R.; Rao, B. V.; Rao, K. S., Dielectric Spectroscopy Studies on Lead Sodium Bismuth Potasium Neobate (PNBKN) Ceramic. International Journal of Advanced Research in Physical Science 2015, 2 (3), 7-21. Стаття надійшла 28.10.2020
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spelling oai:ojs2.1444248.nisspano.web.hosting-test.net:article-2542026-07-22T08:23:45Z SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.67LixTi1-xAlxO3 (0.15≤x≤0.3) CERAMICS СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3 Plutenko, Tatiana V'yunov, Oleg Khomenko, Boris Belous, Anatolii solid solution, lithium-lanthanum titanate-aluminate, complex impedance, dielectric properties. Solid solutions of Al-doped lithium lanthanum titanates La0.67LixTi1-xAlxO3 system (where 0.15&amp;nbsp;≤&amp;nbsp;x&amp;nbsp;≤&amp;nbsp;0.3) have been synthesized by solid-state reaction technique. Light optical microscopy has shown that the grain size of La0.67LixTi1-xAlxO3 ceramics insignificantly increases with an increase in lithium/aluminum concentration. The materials La0.67LixTi1-xAlxO3 show very high dielectric permittivity ε΄&amp;nbsp;104 over a relatively wide frequency range (102&amp;nbsp;≤&amp;nbsp;f&amp;nbsp;≤&amp;nbsp;104&amp;nbsp;Hz) with no apparent dependence on the x. The impedance spectroscopy study indicates three semicircles on Cole-Cole diagram that can be attributed to electrically different areas of ceramic’s grain. V.I.Vernadsky Institute of General and Inorganic Chemistry 2020-12-15 Article Article Inorganic Chemistry Неорганическая химия Неорганічна хімія application/pdf https://ucj.org.ua/index.php/journal/article/view/254 10.33609/2708-129X.86.11.2020.13-23 Ukrainian Chemistry Journal; Vol. 86 No. 11 (2020): Ukrainian Chemistry Journal; 13-23 Украинский химический журнал; ##issue.vol## 86 ##issue.no## 11 (2020): Украинский химический журнал; 13-23 Український хімічний журнал; Том 86 № 11 (2020): Український хімічний журнал; 13-23 2708-129X 2708-1281 en https://ucj.org.ua/index.php/journal/article/view/254/139 Copyright (c) 2020 Tatiana Plutenko, Oleg V'yunov, Boris Khomenko, Anatolii Belous https://creativecommons.org/licenses/by-nc/4.0
spellingShingle Plutenko, Tatiana
V'yunov, Oleg
Khomenko, Boris
Belous, Anatolii
СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3
title СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3
title_alt SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.67LixTi1-xAlxO3 (0.15≤x≤0.3) CERAMICS
title_full СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3
title_fullStr СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3
title_full_unstemmed СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3
title_short СИНТЕЗ ТА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ КЕРАМІКИ La0,67LixTi1-xAlxO3
title_sort синтез та діелектричні властивості кераміки la0,67lixti1-xalxo3
topic_facet solid solution
lithium-lanthanum titanate-aluminate
complex impedance
dielectric properties.
url https://ucj.org.ua/index.php/journal/article/view/254
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