ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3

Using X-ray powder, diffraction the sequence of reactions occurring during the synthesis La0.5Li0.5-xNaxTiO3 by solid-state reaction technique has been determined. Using electron microscopy it has been shown that the grain size decreases with increasing x in La0.5Li0.5-xNaxTiO3 system. The influence...

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Дата:2021
Автори: Plutenko, Tetiana, V'yunov, Oleg, Fedorchuk, Oleksandr, Yanchevskii, Oleg, Belous, Anatolii
Формат: Стаття
Мова:Англійська
Опубліковано: V.I.Vernadsky Institute of General and Inorganic Chemistry 2021
Онлайн доступ:https://ucj.org.ua/index.php/journal/article/view/310
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Назва журналу:Ukrainian Chemistry Journal
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Ukrainian Chemistry Journal
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author Plutenko, Tetiana
V'yunov, Oleg
Fedorchuk, Oleksandr
Yanchevskii, Oleg
Belous, Anatolii
author_facet Plutenko, Tetiana
V'yunov, Oleg
Fedorchuk, Oleksandr
Yanchevskii, Oleg
Belous, Anatolii
author_institution_txt_mv [ { "author": "Tetiana 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": "Oleksandr Fedorchuk", "institution": "V.I. Vernadsky Institute of General and Inorganic Chemistry of National Academy of Sciences of Ukraine" }, { "author": "Oleg Yanchevskii", "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, Tetiana
baseUrl_str https://ucj.org.ua/index.php/journal/oai
collection OJS
datestamp_date 2026-07-22T08:23:46Z
description Using X-ray powder, diffraction the sequence of reactions occurring during the synthesis La0.5Li0.5-xNaxTiO3 by solid-state reaction technique has been determined. Using electron microscopy it has been shown that the grain size decreases with increasing x in La0.5Li0.5-xNaxTiO3 system. The influence of the grain size of ceramics on the dielectric characteristics has been indicated. The frequency dependences of permittivity and dielectric loss tangent have been investigated by ac impedance spectroscopy. It has been established that ceramic sample of La0.5Li0.4Na0.1TiO3 solid solution has the largest value of permittivity ɛ > 104 at wide frequency range (1–104 Hz) in La0.5Li0.5-xNaxTiO3 system.
doi_str_mv 10.33609/2708-129X.87.05.2021.15-24
first_indexed 2025-09-24T17:43:39Z
format Article
fulltext 15 UDC: 549.641.1; 661.8; 621.315.61; 621.317 doi: 10.33609/2708-129X.87.05.2021.15-24 THE SYNTHESIS IMPACT ON DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 T.O. Plutenko, O.I. V’yunov *, O.P. Fedorchuk, O.Z. Yanchevskii, A.G. Belous V.I. Vernadsky Institute of General and Inorganic Chemistry of National Academy of Sciences of Ukraine, Akad. Palladin ave, 32/34, Kyiv, 03142, Ukraine e-mail: vyunov@ionc.kiev.ua Using X-ray powder, diffraction the sequence of reactions occurring during the synthesis La0.5Li0.5-xNaxTiO3 by solid-state reaction technique has been determined. Using electron mi- croscopy it has been shown that the grain size decreases with increasing x in La0.5Li0.5-xNax- TiO3 system. The influence of the grain size of ceramics on the dielectric characteristics has been indicated. The frequency dependences of permittivity and dielectric loss tangent have been investigated by ac impedance spectroscopy. It has been established that ceramic sample of La0.5Li0.4Na0.1TiO3 solid solution has the largest value of permittivity ɛ > 104 at wide frequen- cy range (1–104 Hz) in La0.5Li0.5-xNaxTiO3 system. Keywords: solid solution, lithium-sodium-lanthanum titanate, perovskite, complex im- pedance, colossal permittivity. INTRODUCTION. LLTO and other ABO3 perovskites attract great attention for the last years and are investigated intensively. These materials can be used in microelectronics and electrochemical devices. One of the conductive perovskites applications is the development of electrolytes for lithium-ion batteries, which are for now the critical technology in energy storage. Such solid electrolytes have crucial advantages over liquid analogs: nonflammability and generally improved safety (critical for power supplies of vehicles), low-temperature stability, higher power, and energy densities [1, 2]. There are other different classes of materials for solid electrolytes: phosphates on the base of NASICON, LISICON, garnets  [3– 5]. But LLTO stands out due to relatively high conductivity σ = 10-3 S/cm for bulk samples [6]. It is the ion-conducting material, in which the high ionic conductivity provided by lithium transport through vacancies in A-sublattice, formed by lanthanum and substituting ions and surrounded by oxygen ions, in the perovskite structure. Perovskite-based materials also demon- strate the giant dielectric constant [7]. High dielectric constant (ε′ = 103–106) is the key fea- ture for further miniaturization of microelect ronics components, development of capaci- tors for high-energy storage (Multi-Layer Ce- ramic Capacitors [8]). LLTO-based materials are also remarkable among other perovskites FORMATION DURING THE SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 16 ISSN 2708-129X. Укр. хім. журн., 2021 PHYSICAL CHEMISTRY due to the stability of properties in a wide temperature range [7]. One of such materials is, for example, La0.67Li0.25Ti0.75Al0.25O3 ceram- ics. It  was revealed, that high dielectric per- mittivity in the case of La0.67Li0.25Ti0.75Al0.25O3 is associated with the barrier layer capacitor effect, caused by the depletion of Li ions at the grain boundaries. Therefore, conductiv- ity, structural and morphological features of LLTO have a considerable impact on the giant dielectric constant in it. It was found that in the La0.5Na0.5TiO3 (LNTO) material high dielectric constant is due to the heterogeneous distribution of cations, which leads to a strong local field fraction [9]. It was also shown that solid solutions are formed in the system La0.5Li0.5-xNaxTiO3 (LLNTO) [10]. The dielectric properties of LLNTO have been studied in the microwave region. It can be as- sumed that in the frequency range of 100–106 Hz the presence of sodium will lead to a strong change in the dielectric properties. At first sight, sodium has a big ionic radius and causes many effects, leading to reduction in both conductiv- ity and dielectric constant [10]. It decreases the concentration of mobile charge carriers; reduces the number of vacancies in A site. But also so- dium provokes shifts in the crystal structure of perovskite and has an ambiguous impact on re- sulting properties [11–13]. Despite the long-lasting studies, there are many open challenges regarding lithium con- ductive perovskites. It is known, for example, that synthesis of these ones is a complex and hard task. Almost all of the existing works concentrated on the final properties of ob- tained materials without the understanding of intermediate processes during the synthesis. In this paper, we studied the formation and changes of transitional phases during the La0. 5Li0.5-xNaxTiO3 ceramics synthesis by solid-state reactions technique in a temperature range 20–1300 oC as an attempt to clarify the nature of these processes. In addition, we studied the effect of increasing sodium concentration on dielectric properties of La0.5Li0.5-xNaxTiO3. EXPERIMENT AND DISCUSSION OF THE RESULTS. Samples were obtained from stoi- chiometric amounts of dried Li2CO3 (Merck), Na2CO3 (Merck), La2O3 (Aldrich 99.99%), and TiO2 (Aldrich 99 %) by solid-state reaction technique. Li2CO3 and Na2CO3 compounds were dried at 300 ºC, La2O3 at 800 ºC, and TiO2 at 600  ºC. The mixtures of Li2CO3, Na2CO3, La2O3, and TiO2 were ground in an agate mor- tar with acetone, and calcined in air for 4 h at 1250 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; 40 kV, 20 mA). The calcined powders were ground and pressed into pellets with a diame ter of 10 mm and a thickness of 6 mm under a pressure of 500 kg/cm2 (50MPa). The pellets were sintered at 1300–1330  ºC depending on Na content (6 h). Finally, samples with 1 mm thickness were cut out from prepared raw ce- ramic. In order to determine intermediate phases during synthesis, isothermal heat treatment was carried out in the temperature range from room temperature (RT) to 1300 °C during 2 h. The change in the phase composition was studied in the temperature range 20–1100 ºC by method X-ray phase diffraction (XRD) analysis using DRON-4-07 CuKα-radiation; 40 kV, 20 mA). SiO2 and Al2O3 were used as external standards (for 2Θ and intensity). Grain sizes of ceramic samples of La0.5Li0.5-xNaxTiO3 system (where 0  ≤  x  ≤  0.5) T.O. Plutenko, O.I. V’yunov, O.P. Fedorchuk, O.Z. Yanchevskii, A.G. Belous 17https://ucj.org.ua UCJ № 5 / Vol. 87 were determined using a scanning electron microscope JEM 10CX II (JEOL) and scan- ning electron microscope SEC miniSEM SNE 4500MB equipped with EDAX Element PV6500/00 F spectrometer. Sintered cylindri- cal pellets 10 mm in diameter and 2 mm thick, with evaporated electrodes, were used for elec- trical measurements. Impedance spectroscopy measurements we re performed using a 1260 Impedance / Gain phase Analyzer (Solartron Analytical). Using X-ray powder diffraction analy- sis it has been shown that single-phase sol- id solutions in La0.5Li0.5-xNaxTiO3 system are formed at temperatures above 1200 °C (Fig. 1). All samples of La0.5Li0.5-xNaxTiO3 system have rhombohedral (trigonal) symmetry with space group R-3c. The parameters of the unit cell were calculated by the full-profile Rietveld anal- ysis. As can be seen from Fig. 2, the parame ters of the unit cell in the La0.5Li0.5-xNaxTiO3 system change by Vegard's law, which indicates the formation of solid solutions. The increase in the volume of the unit cell with increasing x is explained by the rise in the average ionic radius in the lithium-sodium sublattice. Intermediate phases of synthesis depending on the temperature of calcination are presen ted in Table 1. Fig. 1. X-ray powder diffraction analysis of La0.5Li0.5-xNaxTiO3 at x  =  0.2, calcined at different temperatures. Marked phases La0.5Li0.3Na0.2TiO3 (◊), La0.5Na0.5TiO3 (□), La2O2CO3 (●), TiO2 (○), Na2Ti3O7 (▼), Li2Ti2O5 (▲), Na2Ti2O5 (*), La2O3 (♦), La2Ti2O7 (■). Fig. 2. Dependence of the unit cell parameters a, c (a) and unit cell volume V (b) of La0.5Li0.5-xNaxTiO3 on x. FORMATION DURING THE SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 18 ISSN 2708-129X. Укр. хім. журн., 2021 PHYSICAL CHEMISTRY Table 1 Phase composition of powders in the La0.5Li0.5-xNaxTiO3 system T, °C х = 0 х = 0.2 х = 0.5 20–400 Li2CO3, TiO2, La(OH)3 Na2CO3, Li2CO3, TiO2, La(OH)3 TiO2, Na2CO3, La(OH)3 500 TiO2, Li2TiO3, La2O2CO3 TiO2, Li2TiO3, Na2CO3, La2O2CO3 TiO2, Na2CO3, La2O2CO3 600 TiO2, Li2TiO3, La2O3 TiO2, Li2TiO3, Na2CO3, La2O2CO3 TiO2, Na2CO3, La2O2CO3 800 TiO2, Li2Ti2O5, La2Ti2O7 TiO2, La2O2CO3, La2O3, Li2Ti2O5, Na2Ti2O5, Na2Ti3O7 TiO2, La2O2CO3, La2O3, Na2Ti2O5, Na2Ti3O7, Na2TiO3 900 TiO2, La2O3, La0.5Li0.5TiO3, Li2Ti2O5, Li2Ti3O7, La2Ti2O7 TiO2, La2O3, La2Ti2O7, La0.5Li0.5TiO3, Li2Ti2O5, Li2Ti3O7, Na2Ti2O5, Li4Ti5O12 TiO2, La2O3, Na2Ti2O5, Na2Ti3O7, Na2TiO3 1000 TiO2, La2O3, La0.5Li0.5TiO3, Li2Ti2O5, Li2Ti3O7, La2Ti2O7 TiO2, La2O3, La2Ti2O7, La0.5Li0.5TiO3, Li2Ti2O5, Li2Ti3O7, Na2Ti2O5, Na2TiO3, NaLiTi3O7, Li4Ti5O12 TiO2, La2O3, La2Ti2O7, Na2Ti2O5, Na2Ti3O7, Na2TiO3, Na4Ti5O12 1100 Li2Ti2O5, La0.5Li0.5TiO3, La2Ti2O7 Li2Ti2O5, Na2Ti2O5, La0.5Li0.5TiO3, La0.5Na0.5TiO3, La2Ti2O7 Na2Ti2O5, La2Ti2O7, La0.5Na0.5TiO3 1200 La0.5Li0.5TiO3 La0.5Li0.3Na0.2TiO3, La0.5Li0.5TiO3, La0.5Na0.5TiO3 La0.5Na0.5TiO3 1300 La0.5Li0.5TiO3 La0.5Li0.3Na0.2TiO3 La0.5Na0.5TiO3 Fig. 3. Scheme of the La0.5Li0.5-xNaxTiO3 solid solutions synthesis by the solid-state reaction technique. T.O. Plutenko, O.I. V’yunov, O.P. Fedorchuk, O.Z. Yanchevskii, A.G. Belous 19https://ucj.org.ua UCJ № 5 / Vol. 87 The scheme of phase transformation occur- ring during La0.5Li0.5-xNaxTiO3 synthesis by the solid-state reaction technique is presented in Fig. 3. Synthesis by the solid-state reaction tech- nique is a complex and multi-stage process. At room temperature in contact with air La2O3 absorbs water and forms lanthanum hydroxide La(OH)3: La2O3 + 3H2O 20–400 °C 2La(OH)3 At higher temperatures, lanthanum hydro xide intensively adsorbs carbon dioxide pro- ducing lanthanum dioxycarbonate. 2La(OH)3 + CO2 500–800 °C La2O2CO3 + 3H2O Titanium (IV) oxide react with lithium car- bonate to produce lithium metatitanate and carbon dioxide: Li2CO3 + TiO2 500–600 °C Li2TiO3 + CO2↑ In the temperature range from 700 to 800 °C a reaction between lithium metatitanate and titanium (IV) oxide and the formation of Li2Ti2O5 takes place. Li2TiO3 + TiO2 700–800 °C Li2Ti2O5 Na2CO3 + 2TiO2 700–800 °C Na2Ti2O5 + CO2↑ Decomposition of lanthanum dioxycar- bonate leads to La2O3 formation: La2O2CO3 800–900 °C La2O3+ CO2↑ Complicated parallel processes of Na2Ti3O7 formation can be presented by: Na2Ti2O5 + TiO2 800–1000 °C Na2Ti3O7 Formation of La2Ti2O7 occurs during the re- action between lanthanum hydroxide and tita- nium (IV) oxide: La2O3 + 2TiO2 850–1000 °C La2Ti2O7 Li2Ti2O5 phase reacts with La2Ti2O7 to form La0.5Li0.5TiO3 Li2Ti2O5 + La2Ti2O7 900–1100 °C 4La0.5Li0.5TiO3 At the same time parallel processes of Li2Ti3O7 formation/decomposition occur: Li2Ti2O5 + TiO2 900–1000 °C Li2Ti3O7 Na2Ti2O5 + La2Ti2O7 800–1100 °C 4La0.5Na0.5TiO3 After all, solid solution La0.5Li0.5-xNaxTiO3 is formed by the interaction of two perovskite phases of La0.5Na0.5TiO3 and La0.5Li0.5TiO3: xLa0.5Na0.5TiO3 + (1-x)La0.5Li0.5TiO3 1200–1250 °C 1200–1250 °C La0.5Li0.5-xNaxTiO3 Fig. 4 shows SEM photographs of La0.5Li0.5-xNaxTiO3 samples. The grain size of ceramics in La0.5Li0.5-xNaxTiO3 solid solutions decreases from 4.5 to 3.5 μm for x = 0.15 and 0.35, respectively. Sintering reduces surface area by growing bonds between contacting particles during heating. Due to random ori- entations of the particles, the bond forms with an embedded grain boundary accommodating the crystal disorientation between particles. Effectively, early sinter bonding replaces sur- face area with a lower energy of grain bound- ary area. As surface area is annihilated, the driving force of the process declines, resulting in slower sintering rates. Mass transport mech- anisms act a great role during sintering. From one point of view, the sintering temperature of La0.5Li0.5-xNaxTiO3 rises with x and this must lead to an increase in grain size of ceramics. On the other hand, the solid solution contains elements Li and Na that tend to evaporate at high temperatures, resulting in the forma- tion of vacancies. Evaporation from the grain FORMATION DURING THE SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 20 ISSN 2708-129X. Укр. хім. журн., 2021 PHYSICAL CHEMISTRY boundary leads to a decrease in the mass trans- fer of the substance, which in turn leads to the appearance of smaller grains [14, 15]. The im- portance of small grain size is illustrated in terms of the increased dielectric constant of barium titanate and reduced sensitivity of it to temperature [16]. Fig. 4. Micrographs of La0.5Li0.5-xNaxTiO3 at x = 0.15 (a), 0.25 (b), 0.35 (c). Fig. 5. a - Frequency dependence of dielectric constant La0.5Li0.5-xNaxTiO3 solid solutions at x = 0(1), 0.1(2), 0.2(3), 0.3(4); inset: the dependence of the dielectric constant on x at a frequency of 1 Hz. b - Fre- quency dependence of dielectric loss tangent in La0.5Li0.5-xNaxTiO3 at x = 0(1), 0.1(2), 0.2(3), 0.3(4). Fig. 5 shows the frequency dependencies of the dielectric constant (Fig. 5a) and dielectric loss tangent (Fig. 5b) at room temperature. So lid solutions La0.5Li0.5xNaxTiO3 with a sodium concentration less than x < 0.25 exhibit high dielectric constant ɛ  >  103 at low frequencies (f ≤ 10 Hz). At x = 0.3 the dielectric constant gradually decreases, which may be associated with a decrease in the grain size (Fig. 4) and an increase in the total number of grains in the ceramic sample. The mobility of lithium in the grain core is greater than at the grain boun dary [16]. As the grain size decreases, the pro- portion of grain boundaries increases, which re- duces the contribution to polarization, and the dielectric constant decreases. The dielectric loss tangent (which is determined by the dissipation of energy due to the movement of charges) de- creases with an increase in the sodium concen- tration at frequencies f > 103 Hz (Fig. 5b). As can be seen from Fig. 5a, the value of the dielectric constant in the La0.5Li0.5-xNaxTiO3 system passes through a maximum in the La0.5Li0.4Na0.1TiO3 solid solution. It is known that in solid solutions where lithium is gradually replaced by sodium in the lanthanum sublattice, the mobility of T.O. Plutenko, O.I. V’yunov, O.P. Fedorchuk, O.Z. Yanchevskii, A.G. Belous 21https://ucj.org.ua UCJ № 5 / Vol. 87 lithium decreases. On the other hand, an in- crease in the amount of sodium increases the unit cell volume, which expands the distance by which the charge carrier can move (Fig. 2). Described above factors lead to contradictory effects that explain the maximum conductivity in the La0.5Li0.4Na0.1TiO3 solid solution. As at x = 0.1 concentration, the number of vacancies and charge carriers Li+ is still quite large and there is no Li-ion conduction, which leads to high dielectric response. CONCLUSIONS. The structure of La0.5Li0.5-xNaxTiO3 perovskites, with 0 < x < 0.5, has been deduced with the Rietveld method. It has been found that an increase in x leads to the rise in unit cell volume that can be explained by the rise in the average ionic radius in the lantha- num sublattice. Using X-ray powder diffraction analysis, it has been found that at the first stage two phases of La0.5Li0.5TiO3 and La0.5Na0.5TiO3 are formed while synthesis of La0.5Li0.5-xNaxTiO3. The final solid solution is formed by the in- teraction between lithium-lanthanum titanate and sodium-lanthanum titanate. Intermediate main phases during solid-state reaction synthe- sis are La2O2CO3, Li2TiO3, Na2Ti2O5, Na2Ti3O7, Li2Ti3O7. Using SEM it has been shown that grain size of ceramics in La0.5Li0.5-xNaxTiO3 so lid solutions decreases from 4.5 to 3.5 μm for x = 0.15 and 0.35, respectively. Impedance spectroscopy has been used to analyze dielectric permittivity and as a result lithium mobility in La0.5Li0.5-xNaxTiO3 system. The dielectric constant passes through a maximum in La0.5Li0.4Na0.1TiO3 ceramic. This can be explained by the increase in lithium ions mobility due to the growth of unit cell volume which makes a contribution to the polarization and leads to the maximum va lue of dielectric constant in these materials. Acknowledgments. The work was sup- ported by the Research program of the Ukrainian National Academy of Scien ces “New functional substances and ma- terials for chemical production” (Fine Chemicals), project № 0119U101351. ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3 Т.  О.  Плутенко, О.  І.  В’юнов  *, О.  П.  Фе- дорчук, О. З. Янчевський, А. Г. Білоус Інститут загальної та неорганічної хімії ім. В. І. Вернадського НАН України, просп. Акад. Палладіна 32/34, Київ 03142, Україна * e-mail: vyunov@ionc.kiev.ua Тверді розчини на основі титанату лі- тію-натрію-лантану La0,5Li0,5-xNaxTiO3 син- тезовано методом твердофазних реакцій за температур понад 1200 °C. За допомогою ме- тоду рентгенівської порошкової дифракції визначено послідовність реакцій, що відбу- ваються під час синтезу. Встановлено, що на першому етапі синтезу La0,5Li0,5-xNaxTiO3 іде одночасне утворення двох перовськитних фаз La0,5Li0,5TiO3 та La0,5Na0,5TiO3. Кінцевий твердий розчин утворюється при взаємо- дії між титанатом літію-лантану та титана- том натрію-лантану. Основними проміж- ними фазами є La2O2CO3, Li2TiO3, Na2Ti2O5, Na2Ti3O7, Li2Ti3O7. За допомогою методу Рітвельда було визначено параметри криста- лічної структури La0,5Li0,5-xNaxTiO3. Усі зраз- ки системи La0,5Li0,5xNaxTiO3 мають ромбое- дричну (тригональну) симетрію з просторо- вою групою R-3c. Параметри елементарної FORMATION DURING THE SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 22 ISSN 2708-129X. Укр. хім. журн., 2021 PHYSICAL CHEMISTRY комірки в системі титанатів літію-натрі- ю-лантану змінюються відповідно до закону Вегарда, що свідчить про утворення твердих розчинів. Знайдено, що збільшення x при- зводить до збільшення об’єму елементарної комірки, що можна пояснити зростанням середнього іонного радіуса в підґратці лан- тану. За допомогою електронної мікроско- пії показано, що розмір зерен зменшується зі збільшенням x у системі La0,5Li0,5xNaxTiO3. Механізми масового транспорту відіграють велику роль під час спікання. З одного боку, температура спікання La0,5Li0,5-xNaxTiO3 під- вищується з x, і це повинно призвести до збільшення розміру зерен кераміки. З іншо- го боку, твердий розчин містить іони літію і натрію, які мають тенденцію до випаро- вування за високих температур, що при- зводить до утворення вакансій. Утворення вакансій на границях зерен призводить до зменшення масообміну речовини, що, сво- єю чергою, призводить до появи менших за розміром зерен. Показано вплив розмі- ру зерен кераміки на діелектричні характе- ристики. За допомогою методу імпедансної спектроскопії було вивчено діелектричні властивості в системі La0,5Li0,5-xNaxTiO3. По- казано, що значення діелектричної проник- ності проходить через максимум у кераміці La0.5Li0.4Na0.1TiO3. Це можна пояснити вели- кою кількістю іонів літію та збільшенням їх- ньої рухливості внаслідок збільшення об’є- му елементарної комірки, що дає великий вклад у поляризацію і призводить до макси- мального значення діелектричної проник- ності в цих матеріалах. Ключові слова: твердий розчин, тита- нат літію-натрію-лантану, перовськит, ме- тод комплексного імпедансу, гігантська ді електрична проникність. ЛІТЕРАТУРА 1. Yu K., Tian Y., Gu R., Jin L., Ma R., Sun H., Xu Y., Xu Z., Wei X. Ionic conduction, colossal permittivity and dielectric relaxation behavior of solid electrolyte Li3xLa2/3−xTiO3 ceramics. Journal of the European Ceramic Society. 2018, 38(13). P. 4483–4487. https://doi.org/10.1016/j.jeurceramsoc. 2018.05.023. 2. Song F., Yamamoto T., Yabutsuka T., Yao T., Takai Sh. Synthesis and Characterization of LAGP-Based Lithium Ion-Conductive Composites with an LLTO Additive. Journal of Alloys and Compounds. 2021, 853. 157089. https://doi.org/10.1016/j.jallcom.2020.157089. 3. Thangadurai V., Narayanan S., Pinzaru D. Garnet-type solid-state fast Li ion conductors for Li batteries: critical review. Chemical Society Reviews. 2014, 43. Р. 4714–4727. https://doi.org/10.1039/C4CS00020J. 4. Zhang H., Hao S., Lin J. Influence of Li2O- B2O3 glass on ionic migration and interfacial properties of La2/3−xLi3xTiO3 solid electrolyte. Journal of Alloys and Compounds. 2017, 704. Р. 109–116. https://doi.org/10.1016/j.jallcom.2017.02.059. 5. Adachi G., Imanaka N., Aono H. Fast Li+ Conducting Ceramic Electrolytes. Advanced Materials. 1996, 8. Р. 127–135. https://doi.org/10.1002/adma.19960080205. 6. Inaguma Y., Liquan C., Itoh M., Nakamura T., Uchida T., Ikuta H., Wakihara M. High ionic conductivity in lithium lanthanum titanate. Solid State Communications. 1993, 86(10). Р. 689–693. https://doi.org/10.1016/0038-1098(93)90841-A. 7. García-Martín S., Morata-Orrantia A., Agu irre M. H., Alario-Franco M. Á. Giant barrier layer capacitance effects in the lithium ion conducting material La0.67Li0.25Ti0.75Al0.25O3. Applied Physics Letters. 2005, 86. 043110. http://dx.doi.org/10.1063/1.1852717. T.O. Plutenko, O.I. V’yunov, O.P. Fedorchuk, O.Z. Yanchevskii, A.G. Belous 23https://ucj.org.ua UCJ № 5 / Vol. 87 8. Peng Zh., Wang J., Liang P., Zhu J., Zhou X., Chao X., Yang Z. A new perovskite-related ceramic with colossal permittivity and low dielectric loss. Journal of the European Ceramic Society. 2020, 40(12). Р. 4010–4015. https://doi.org/10.1016/j.jeurceramsoc.2020. 04.030. 9. Nakamura T., Sun P.-H., Shan Y. J., Inaguma Y., Itoh M., Kim I.-S. On the perovskite-related materials of high dielectric permittivity with small temperature dependence and low dielectric loss. Ferroelectrics. 1997, 196(1). Р. 205–209. https://doi.org/10.1080/00150199708224163. 10. Belous A. G., Ovchar O. V. Temperature compensated microwave dielectrics based on lithium containing titanates. Journal of the European Ceramic Society. 2003, 23(14). Р. 2525–2528. https://doi.org/10.1016/S0955-2219(03) 00185-7. 11. Sanz J., Rivera A., León C., Santamaría J., Várez A., V’yunov O., Belous A. G. Li mobility in (Li,Na)yLa0.66-y/3TiO3 perovskites (0.09<y≤ ≤0.5). A model system for the percolation theory. Materials Research Society. 2003, 756. Р. 231–236. https://doi.org/10.1557/PROC-756-EE2.3. 12. Sanjuan M. L., Laguna M. A., Belous A. G., V’yunov O. I. On the local structure and lithium dynamics of La0.5(Li,Na)0.5TiO3 ionic conductors. A Raman study. Chem. Mater. 2005, 17. Р. 5862–5866. https://doi.org/10.1021/cm0517770. 13. Herrero C. P., Varez A., Rivera A., Santa marıa J., Leon C., V’yunov O., Belous A. G., Sanz J. Influence of vacancy ordering on the percolative behavior of (Li1-xNax)3yLa2/3-yTiO3 perovskites. J. Phys. Chem. B. 2005, 109. Р. 3262–3268. https://doi.org/10.1021/jp046076p. 14. Kambale K., Mahajan A., Butee S.P. Effect of grain size on the properties of ceramics. Metal Powder Report. 2019, 74(3). Р. 689–693. http://dx.doi.org/10.1016/j.mprp.2019.04.060. 15. German R. M. Sintering trajectories: de scription on how density, surface area, and grain size change. The Minerals, Metals & Materials Society. 2016, 68. Р. 878–884. https://doi.org/10.1007/s11837-015-1795-8. 16. Subbarao E.C. Grain size effects in advanced ceramics. Colloids and Surfaces A: Physicochemical and Engineering Aspects. 1998, 133(1–2). Р. 3–11. https://doi.org/10.1016/S0927-7757(97) 00104-0. REFERENCES 1. Yu K., Tian Y., Gu R., Jin L., Ma R., Sun H., Xu Y., Xu Z., Wei X. Ionic conduction, colossal permittivity and dielectric relaxation behavior of solid electrolyte Li3xLa2/3−xTiO3 ceramics. Journal of the European Ceramic Society. 2018. 38 (13): 4483–4487. https://doi. org/10.1016/j.jeurceramsoc.2018.05.023. 2. Song F., Yamamoto T., Yabutsuka T., Yao T., Takai S. Synthesis and Characterization of LAGP-Based Lithium Ion-Conductive Composites with an LLTO Additive. Journal of Alloys and Compounds. 2021. 853: 157089. https://doi.org/10.1016/j.jallcom.2020. 157089. 3. Thangadurai V., Narayanan S., Pinzaru D. Garnet-type solid-state fast Li ion conductors for Li batteries: critical review. Chemical Society Reviews. 2014. 43: 4714–4727. https:// doi.org/10.1039/C4CS00020J. 4. Zhang H., Hao S., Lin J. Influence of Li2O- B2O3 glass on ionic migration and interfacial properties of La2/3−xLi3xTiO3 solid electrolyte. Journal of Alloys and Compounds. 2017. 704: 109–116. https://doi.org/10.1016/j.jallcom. 2017.02.059. FORMATION DURING THE SYNTHESIS AND DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 24 ISSN 2708-129X. Укр. хім. журн., 2021 PHYSICAL CHEMISTRY 5. Adachi G., Imanaka N., Aono H. Fast Li+ Conducting Ceramic Electrolytes. Advanced Materials. 1996. 8: 127–135. https://doi.org/ 10.1002/adma.19960080205. 6. Inaguma Y., Liquan C., Itoh M., Nakamura T., Uchida T., Ikuta H., Wakihara M. High ionic conductivity in lithium lanthanum titanate. Solid State Communications. 1993. 86 (10): 689–693. https://doi.org/10.1016/0038- 1098(93)90841-A. 7. García-Martín S., Morata-Orrantia A., Agu irre M. H., Alario-Franco M. Á. Giant barrier layer capacitance effects in the lithium ion conducting material La0.67Li0.25Ti0.75Al0.25O3. Applied Physics Letters. 2005. 86: 043110. http://dx.doi.org/10.1063/1.1852717. 8. Peng Zh., Wang J., Liang P., Zhu J., Zhou X., Chao X., Yang Z. A new perovskite-related ceramic with colossal permittivity and low dielectric loss. Journal of the European Ceramic Society. 2020. 40 (12): 4010–4015. https://doi.org/10.1016/j.jeurceramsoc.2020. 04.030. 9. Nakamura T., Sun P.-H., Shan Y. J., Inagu ma Y., Itoh M., Kim I.-S. On the perovskite- related materials of high dielectric permittivity with small temperature dependence and low dielectric loss. Ferroelectrics. 1997. 196 (1): 205–209. https:// doi.org/10.1080/00150199708224163. 10. Belous A.G., Ovchar O.V. Temperature compensated microwave dielectrics based on lithium containing titanates. Journal of the European Ceramic Society. 2003. 23 (14): 2525–2528. https://doi.org/10.1016/S0955- 2219(03)00185-7. 11. Sanz J., Rivera A., León C., Santamaría J., Várez A., V’yunov O., Belous A.G. Li mo bility in (Li,Na)yLa0.66-y/3TiO3 perovskites (0.09<y≤0.5). A model system for the percolation theory. Materials Research Society. 2003. 756: 231–236. https://doi. org/10.1557/PROC-756-EE2.3. 12. Sanjuan M. L., Laguna M. A., Belous A. G., V’yunov O. I. On the local structure and lithium dynamics of La0.5(Li,Na)0.5TiO3 ionic conductors. A Raman study. Chem. Mater. 2005. 17: 5862–5866. https://doi. org/10.1021/cm0517770. 13. Herrero C. P., Varez A., Rivera A., Santa marıa J., Leon C., V’yunov O., Belous A. G., Sanz J. Influence of vacancy ordering on the percolative behavior of (Li1-xNax)3yLa2/3-y TiO3 perovskites. J. Phys. Chem. B. 2005. 109: 3262–3268. https://doi.org/10.1021/ jp046076p. 14. Kambale K., Mahajan A., Butee S.P. Effect of grain size on the properties of ceramics. Metal Powder Report. 2019. 74 (3): 689–693. http://dx.doi.org/10.1016/j.mprp.2019.04.060. 15. German R.M. Sintering trajectories: descrip tion on how density, surface area, and grain size change. The Minerals, Metals & Materials Society. 2016. 68: 878–884. https://doi. org/10.1007/s11837-015-1795-8. 16. Subbarao E.C. Grain size effects in ad vanced ceramics. Colloids and Surfaces A: Physicochemical and Engineering Aspects. 1998. 133 (1–2): 3–11. https://doi.org/10.1016/ S0927-7757(97)00104-0. Стаття надійшла 20.05.2021.
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spelling oai:ojs2.1444248.nisspano.web.hosting-test.net:article-3102026-07-22T08:23:46Z THE SYNTHESIS IMPACT ON DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3 ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3 Plutenko, Tetiana V'yunov, Oleg Fedorchuk, Oleksandr Yanchevskii, Oleg Belous, Anatolii solid solution, lithium-sodium-lanthanum titanate, perovskite, complex impedance, colossal permittivity. Using X-ray powder, diffraction the sequence of reactions occurring during the synthesis La0.5Li0.5-xNaxTiO3 by solid-state reaction technique has been determined. Using electron microscopy it has been shown that the grain size decreases with increasing x in La0.5Li0.5-xNaxTiO3 system. The influence of the grain size of ceramics on the dielectric characteristics has been indicated. The frequency dependences of permittivity and dielectric loss tangent have been investigated by ac impedance spectroscopy. It has been established that ceramic sample of La0.5Li0.4Na0.1TiO3 solid solution has the largest value of permittivity ɛ&amp;nbsp;&amp;gt;&amp;nbsp;104 at wide frequency range (1–104 Hz) in La0.5Li0.5-xNaxTiO3 system. V.I.Vernadsky Institute of General and Inorganic Chemistry 2021-06-25 Article Article Physical chemistry Физическая xимия Фізична xімія application/pdf https://ucj.org.ua/index.php/journal/article/view/310 10.33609/2708-129X.87.05.2021.15-24 Ukrainian Chemistry Journal; Vol. 87 No. 5 (2021): Ukrainian Chemistry Journal; 15-24 Украинский химический журнал; ##issue.vol## 87 ##issue.no## 5 (2021): Ukrainian Chemistry Journal; 15-24 Український хімічний журнал; Том 87 № 5 (2021): Український хімічний журнал; 15-24 2708-129X 2708-1281 en https://ucj.org.ua/index.php/journal/article/view/310/169 Copyright (c) 2021 Tetiana Plutenko, Oleg V'yunov, Oleksandr Fedorchuk, Oleg Yanchevskii, Anatolii Belous https://creativecommons.org/licenses/by-nc/4.0
spellingShingle Plutenko, Tetiana
V'yunov, Oleg
Fedorchuk, Oleksandr
Yanchevskii, Oleg
Belous, Anatolii
ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3
title ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3
title_alt THE SYNTHESIS IMPACT ON DIELECTRIC PROPERTIES OF La0.5Li0.5-xNaxTiO3
title_full ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3
title_fullStr ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3
title_full_unstemmed ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3
title_short ВПЛИВ СИНТЕЗУ НА ДІЕЛЕКТРИЧНІ ВЛАСТИВОСТІ La0,5Li0,5-xNaxTiO3
title_sort вплив синтезу на діелектричні властивості la0,5li0,5-xnaxtio3
topic_facet solid solution
lithium-sodium-lanthanum titanate
perovskite
complex impedance
colossal permittivity.
url https://ucj.org.ua/index.php/journal/article/view/310
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