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1.


   
    Исследования твердых растворов состава Pb1-xBax(NO3)2 / К. Е. Коржнева [и др.] // Фундамент. пробл. совр. материаловед. - 2018. - Т. 15, № 3. - С. 360-365, DOI 10.25712/ASTU.1811-1416.2018.03.008. - Библиогр.: 13. - Работа выполнена в рамках государственного задания, проект № 0330 - 2016 - 0008 и при поддержке Российского фонда фундаментальных исследований (грант № 18-32-00359). . - ISSN 1811-1416
   Перевод заглавия: Studies of solid solutions of the composition Pb1-xBax(NO3)2
Кл.слова (ненормированные):
рост из водных растворов -- твердый раствор состава Pb1-xBax(NO3)2 -- рентгенофазовый анализ -- метод Ритвельда -- Crystal growth from aqueous solution -- solid solution ofPb1-xBax(NO3)2 -- powder X-ray diffraction analysis -- Rietveld method
Аннотация: При исследовании системы Pb(NO3)2–Ba(NO3)2–H2O впервые были получены соединения состава Pb0,75Ba0,25(NO3)2, Pb0,68Ba0,32(NO3)2, Ba0,58Pb0,42(NO3)2, Ba0,73Pb0,27(NO3)2. Кристаллы выращивались из водных растворов с разным соотношением Pb(NO3)2 к Ba(NO3)2. Во всех поставленных экспериментах рост осуществлялся путем медленного охлаждения со скоростью 1°С/сутки в диапазоне температур 75 – 45При исследовании системы Pb(NO3)2–Ba(NO3)2–H2O впервые были получены соединения состава Pb0,75Ba0,25(NO3)2, Pb0,68Ba0,32(NO3)2, Ba0,58Pb0,42(NO3)2, Ba0,73Pb0,27(NO3)2. Кристаллы выращивались из водных растворов с разным соотношением Pb(NO3)2 к Ba(NO3)2. Во всех поставленных экспериментах рост осуществлялся путем медленного охлаждения со скоростью 1При исследовании системы Pb(NO3)2–Ba(NO3)2–H2O впервые были получены соединения состава Pb0,75Ba0,25(NO3)2, Pb0,68Ba0,32(NO3)2, Ba0,58Pb0,42(NO3)2, Ba0,73Pb0,27(NO3)2. Кристаллы выращивались из водных растворов с разным соотношением Pb(NO3)2 к Ba(NO3)2. Во всех поставленных экспериментах рост осуществлялся путем медленного охлаждения со скоростью 1oС/сутки в диапазоне температур 75 – 45оС. С помощью рентгенофазового анализа на базе экспериментальных данных была построена часть фазовой диаграммы системы Pb(NO3)2–Ba(NO3)2–H2O и выделены поля кристаллизации Ba(NO3)2 и непрерывного ряда твердых растворов состава Pb1-xBax(NO3)2. Выращенные кристаллы исследовали с помощью рентгенофазового анализа, и для полученных рентгенограмм делали уточнение методом Ритвельда. Все пики на рентгенограммах были проиндексированы кубической центросимметричной структурой (Pa-3) с параметрами, близкими к Ba(NO3)2. При взаимодействии простых соединений нитрата свинца и бария образуется ряд твердых растворов с постепенным увеличением объема и параметров ячейки от чистого нитрата свинца к чистому нитрату бария. Данная структура также характеризуется одинаковым координационным числом катионов 12, разными ионными радиусами Pb 1.49, Ba 1.61, а также одним видом равностороннего NO3 треугольника с углами 60о и длинами связей от 2,1078 до 2,1597. Кристалл Pb0,68Ba0,32(NO3)2 прозрачен в диапазоне 0,304-3,5 микрон. Была проведена оценка ширины запрещенной зоны, которая составила 3,81 и 3,88 эВ при 300 и 80 К, соответственно.С/сутки в диапазоне температур 75 – 45°С. С помощью рентгенофазового анализа на базе экспериментальных данных была построена часть фазовой диаграммы системы Pb(NO3)2–Ba(NO3)2–H2O и выделены поля кристаллизации Ba(NO3)2 и непрерывного ряда твердых растворов состава Pb1-xBax(NO3)2. Выращенные кристаллы исследовали с помощью рентгенофазового анализа, и для полученных рентгенограмм делали уточнение методом Ритвельда. Все пики на рентгенограммах были проиндексированы кубической центросимметричной структурой (Pa-3) с параметрами, близкими к Ba(NO3)2. При взаимодействии простых соединений нитрата свинца и бария образуется ряд твердых растворов с постепенным увеличением объема и параметров ячейки от чистого нитрата свинца к чистому нитрату бария. Данная структура также характеризуется одинаковым координационным числом катионов 12, разными ионными радиусами Pb 1.49, Ba 1.61, а также одним видом равностороннего NO3 треугольника с углами 60° и длинами связей от 2,1078 до 2,1597. Кристалл Pb0,68Ba0,32(NO3)2 прозрачен в диапазоне 0,304-3,5 микрон. Была проведена оценка ширины запрещенной зоны, которая составила 3,81 и 3,88 эВ при 300 и 80 К, соответственно.С. С помощью рентгенофазового анализа на базе экспериментальных данных была построена часть фазовой диаграммы системы Pb(NO3)2–Ba(NO3)2–H2O и выделены поля кристаллизации Ba(NO3)2 и непрерывного ряда твердых растворов состава Pb1-xBax(NO3)2. Выращенные кристаллы исследовали с помощью рентгенофазового анализа, и для полученных рентгенограмм делали уточнение методом Ритвельда. Все пики на рентгенограммах были проиндексированы кубической центросимметричной структурой (Pa-3) с параметрами, близкими к Ba(NO3)2. При взаимодействии простых соединений нитрата свинца и бария образуется ряд твердых растворов с постепенным увеличением объема и параметров ячейки от чистого нитрата свинца к чистому нитрату бария. Данная структура также характеризуется одинаковым координационным числом катионов 12, разными ионными радиусами Pb 1.49, Ba 1.61, а также одним видом равностороннего NO3 треугольника с углами 60° и длинами связей от 2,1078 до 2,1597. Кристалл Pb0,68Ba0,32(NO3)2 прозрачен в диапазоне 0,304-3,5 микрон. Была проведена оценка ширины запрещенной зоны, которая составила 3,81 и 3,88 эВ при 300 и 80 К, соответственно.
During the present study of Pb(NO3)2-Ba(NO3)2-H2O system Pb0,75Ba0,25(NO3)2, Pb0,68Ba0,32(NO3)2, Ba0,58Pb0,42(NO3)2, Ba0,73Pb0,27(NO3)2 compounds were obtained for the first time. The crystals were grown from aqueous solutions with different ratios of Pb(NO3)2 to Ba(NO3)2. The growth was carried out by slow cooling at a rate of 1°/day in the temperature range of 75-45°C in all experiments. Using x-ray diffraction phase analysis part of Pb(NO3)2-Ba(NO3)2-H2O phase diagram was built and the crystallization fields of Ba(NO3)2 and a continuous series of Pb1-xBax(NO3)2 solid solutions were selected on the basis of the experimental data. The grown crystals were investigated by x-ray phase analysis and the obtained x-ray diffraction patterns were refined by the Rietveld method. All peaks in patterns were indexed by a cubic centrosymmetric structure (Pa-3) with parameters close to Ba(NO3)2. The interaction of simple compounds of lead and barium nitrates produces a number of solid solutions with a gradual increase in the volume and parameters of the unit cell from pure lead nitrate to pure barium nitrate. Their structure is characterized by the same coordination number (12) for cations with different radii: Pb2+ (1.49), Ba2+ (1.61), as well as one kind of equilateral NO3 triangle with angles of 60° and bond lengths from 2.1078 to 2.197 Å. Pb0,68Ba0,32(NO3)2 crystal is transparent in the range of 0,304-3,5 microns. The band gap was estimated as 3.81 and 3.88 eV at 300 and 80 K, respectively.

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Держатели документа:
Дальневосточный государственный университет путей сообщения
Институт геологии и минералогии им. В. С. Соболева СО РАН
Институт физики им. Л.В. Киренского СО РАН
Новосибирский государственный университет

Доп.точки доступа:
Коржнева, Ксения Евгеньевна; Korzhneva K. E.; Исаенко, Людмила Ивановна; Isaenko L. I.; Елисеев, Александр Павлович; Elisseev A. P.; Голошумова, Алина Александровна; Goloshumova A. A.; Тарасова, Александра Юрьевна; Tarasova A.Yu.; Молокеев, Максим Сергеевич; Molokeev, M. S.
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2.


   
    The electronic and optical properties of a narrow-band red-emitting nanophosphor K2NaGaF6:Mn4+ for warm white light-emitting diodes / C. Jiang [et al.] // J. Mater. Chem. C. - 2018. - Vol. 6, Is. 12. - P. 3016-3025, DOI 10.1039/c7tc05098d. - Cited References: 55. - We acknowledge the financial support received from the Program for Innovative Research Team in University of Ministry of Education of China (Grant No. IRT_17R38), the Key Program of Guangzhou Scientific Research Special Project (Grant No. 201607020009), the National Natural Science Foundation of China (Grant No. 51672085, 51322208, 3160440), and the Fundamental Research Funds for the Central Universities. M. G. Brik acknowledges the supports received from the Recruitment Program of High-end Foreign Experts (Grant No. GDW20145200225), the Programme for the Foreign Experts offered by Chongqing University of Posts and Telecommunications, Ministry of Education and Research of Estonia, (Project PUT430) and European Regional Development Fund (Project TK141), and the Guest Professorship at Kyoto University (Prof. S. Tanabe laboratory). The first-principles calculations were carried out using the resources provided by the Wroclaw centre for Networking and Supercomputing (http://wcss.pl; Grant No. WCSS#10117290). . - ISSN 2050-7534
   Перевод заглавия: Электронные и оптические свойства узкополосного нанолюминофора K2NaGaF6:Mn4+ , излучающего красный свет, для белых светодиодов излучающих теплый белый свет
Кл.слова (ненормированные):
Energy efficiency -- Gallium compounds -- Light emission -- Light emitting diodes -- Manganese -- Manganese compounds -- Optical properties -- Phosphors -- Precipitation (chemical) -- Quenching -- Rietveld refinement -- Sodium compounds
Аннотация: Recently, as a key red component in the development of warm white light-emitting diodes (WLEDs), Recently, as a key red component in the development of warm white light-emitting diodes (WLEDs), Mn4+-doped fluorides with narrow red emission have sparked rapidly growing interest because they improve color rendition and enhance the visual energy efficiency. Herein, a red nanophosphor, K2NaGaF6:Mn4+, with a diameter of 150-250 nm has been synthesized using a simple co-precipitation method. Rietveld refinement reveals that it crystallizes in the space group Fm3m with the cell parameter a = 8.25320(4) Å. The exchange charge model (ECM) has been used to calculate the energy levels of Mn4+ ions in K2NaGaF6, which match well with the experimental spectra. The as-synthesized phosphor exhibits a narrow red emission at around 630 nm (spin-forbidden 2Eg → 4A2 transition of Mn4+ ions) when excited at 365 nm (4A2g → 4T1g) and 467 nm (4A2g → 4T2g), with a quantum efficiency (QE) of 61% and good resistance to thermal quenching. Based on the structure, the formation mechanism of ZPL has been discussed. In addition, the concentration-dependent decay curves of Mn4+ in K2NaGaF6 were fitted using the Inokuti-Hirayama model, suggesting that the dipole-dipole interactions determine the concentration quenching. Finally, encouraged by the good performance, a warm LED with a CRI of 89.4 and CCT of 3779 K was fabricated by employing the title nanophosphor as the red component. Our findings suggest that K2NaGaF6:Mn4+ can be a viable candidate for the red phosphor used in warm WLEDs.

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Держатели документа:
China-Germany Research Center for Photonic Materials and Device, State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, School of Materials Science and Engineering, South China University of Technology, Guangzhou, China
School of Applied Physics and Materials, Wuyi University Jiangmen, Guangdong, China
College of Mathematics and Physics, Chongqing University of Posts and Telecommunications, Chongqing, China
Institute of Physics, University of Tartu, W. Ostwald Str. 1, Tartu, Estonia
Institute of Physics, Jan Dlugosz University, Armii Krajowej 13/15, Cz?stochowa, Poland
Laboratory of Crystal Physics, Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, Russian Federation
Siberian Federal University, Krasnoyarsk, Russian Federation
Department of Chemistry, Hong Kong Baptist University, Kowloon Tong, Hong Kong

Доп.точки доступа:
Jiang, C.; Brik, M. G.; Li, L.; Peng, J.; Wu, J.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Wong, K. -L.; Peng, M.
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3.


   
    Synthesis, structural, magnetic, and electronic properties of cubic CsMnMoO3F3 oxyfluoride / V. V. Atuchin [et al.] // J. Phys. Chem. C. - 2012. - Vol. 116, Is. 18. - P. 10162-10170, DOI 10.1021/jp302020f. - Cited References: 64. - We thank Dr. A.M. Ziatdinov for the electron paramagnetic resonance measurements. This study was partly supported by SB RAS (Grant 28). . - ISSN 1932-7447
РУБ Chemistry, Physical + Nanoscience & Nanotechnology + Materials Science, Multidisciplinary
Рубрики:
RAY PHOTOELECTRON-SPECTROSCOPY
   PHASE-TRANSITIONS

   CORE LEVELS

   SURFACE CHARACTERIZATION

   CRYSTAL-STRUCTURE

   CLEAVED SURFACE

   MIXED-VALENCE

   OXIDES

   MN

   MOLYBDENUM

   Chemical bondings

   Cubic phase

   Energy differences

   Heat capacity measurements

   Oxyfluorides

   Powder samples

   Solid-state synthesis

   Space Groups

   Temperature range

   Valence electron

   Binding energy

   Chemical bonds

   Electronic structure

   Fluorine compounds

   Magnetic properties

   Metal ions

   Photoelectrons

   Rietveld method

   X ray photoelectron spectroscopy

   Electronic properties

Аннотация: A powder sample of CsMnMoO3F3 oxyfluoride has been prepared by solid state synthesis. The pyrochlore-related crystal structure of CsMnMoO3F3 has been refined by the Rietveld method at T = 298 K (space group Fd-3m, a = 10.59141(4) angstrom, V = 1188.123(8) angstrom(3); R-B = 3.44%). The stability of the cubic phase has been obtained over the temperature range T = 110-293 K by heat capacity measurements. Magnetic properties have been measured over the range of T = 2-300 K. The electronic structure of CsMnMoO3F3 has been evaluated by X-ray photoelectron spectroscopy. Chemical bonding effects have been discussed for all metal ions using binding energy difference parameters and wide comparison with related oxides and fluorides. The competition between O-2(-) and F- ions for metal valence electrons has been found.

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Держатели документа:
Atuchin, Victor V.
Gavrilova, Tatyana A.
Kesler, Valery G.] SB RAS, Inst Semicond Phys, Novosibirsk 630090, Russia
Molokeev, Maxim S.
Yurkin, Gleb Yu.
Flerov, Igor N.
Patrin, Gennadii S.] SB RAS, Inst Phys, Krasnoyarsk 660036, Russia
Laptash, Natalia M.] FEB RAS, Inst Chem, Vladivostok 690022, Russia
Flerov, Igor N.
Patrin, Gennadii S.] Siberian Fed Univ, Inst Engn Phys & Radio Elect, Krasnoyarsk 660074, Russia

Доп.точки доступа:
Atuchin, V. V.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Yurkin, G. Yu.; Юркин, Глеб Юрьевич; Gavrilova, T. A.; Kesler, V. G.; Laptash, N. M.; Flerov, I. N.; Флёров, Игорь Николаевич; Patrin, G. S.; Патрин, Геннадий Семёнович
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4.


   
    Synthesis and luminescent properties of (RE0.95Ln0.05)2O2S (RE = La, Y; Ln = Ho, Tm) / E. I. Sal'nikova, Y. G. Denisenko, I. E. Kolesnikov [et al.] // J. Solid State Chem. - 2021. - Vol. 293. - Ст. 121753, DOI 10.1016/j.jssc.2020.121753. - Cited References: 33 . - ISSN 0022-4596
Кл.слова (ненормированные):
Rare earth oxysulfides -- Synthesis -- Rietveld -- Luminescence -- Lifetime -- Quantum yield
Аннотация: Solid solutions of oxysulfides (RE0.95Ln0.05)2O2S (RE = La, Y; Ln = Ho, Tm) were obtained by hydrogen reduction of the co-precipitated sulfates followed by sulfidation of the reaction products. The crystal chemical characteristics of the obtained compounds were refined by the Rietveld method. Morphological certification of particles in the dynamics of synthesis was performed. Most of the particles produced by chemical reactions have a cut that indicates the formation of a compound with a hexagonal syngony with angles of 60 and 120°. This indicates that the thermal effect of gaseous reagents H2, H2S on sulfates leads to heterogeneous reactions of thermal dissociation and the formation of new phases. Steady state luminescence properties displayed characteristic sharp bands corresponding to 4f-4f transitions. Luminescence decay curves of all studied samples showed monoexponential decay with microsecond and hundreds microsecond lifetimes depending on doping ions. Calculated color coordinates of Ho3+ and Tm3+-doped powders make them promising candidates to be used as phosphors.

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Держатели документа:
Department of Inorganic and Physical Chemistry, Tyumen State University, Tyumen, 625003, Russian Federation
Komissarov Department of General Chemistry, Northen Trans-Ural Agricultural University, Tyumen, 625003, Russian Federation
Department of General and Special Chemistry, Industrial University of Tyumen, Tyumen, 625000, Russian Federation
Center for Optical and Laser Materials Research, St. Petersburg State University, St. Petersburg, 199034, Russian Federation
Department of Physics, Lappeenranta University of Technology LUT, Lappeenranta, 53850, Finland
Laboratory of the Chemistry of Rare Earth Compounds, Institute of Solid State Chemistry, UB RAS, Ekaterinburg, 620137, Russian Federation
Laboratory of Electron and Probe Microscopy, Tyumen State University, Tyumen, 625003, Russian Federation
Siberian Federal University, Krasnoyarsk, 660041, Russian Federation
Laboratory of Molecular Spectroscopy, Kirensky Institute of Physics Federal Research Center KSC SB RAS, Krasnoyarsk, 660036, Russian Federation

Доп.точки доступа:
Sal'nikova, E. I.; Denisenko, Y. G.; Kolesnikov, I. E.; Lahderanta, E.; Andreev, O. V.; Azarapin, N. O.; Basova, S. A.; Gubin, A. A.; Oreshonkov, A. S.; Орешонков, Александр Сергеевич
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5.


   
    Structure refinement and magnetic properties of synthetic Co3Ge2O5(OH)4 phyllogermanate / N. A. Belskaya, E. K. Khrapova, A. A. Ivanova [et al.] // J. Magn. Magn. Mater. - 2023. - Vol. 587. - Ст. 171262, DOI 10.1016/j.jmmm.2023.171262. - Cited References: 51. - The authors are grateful to Dr. N.V. Kazak and Dr. A.A. Levin for a lot of fruitful discussions. Magnetisation measurements were carried out in the Common Access Facility Centres of SBRAS (Krasnoyarsk, Russia) X-ray powder diffraction measurements were performed at the Engineering Centre of St. Petersburg State Institute of Technology. - The study was supported by grant No. 23-22-00245 of the Russian Science Foundation, https://rscf.ru/project/23-22-00245/ . - ISSN 0304-8853. - ISSN 1873-4766
Кл.слова (ненормированные):
Layered material -- Lizardite structure -- Hydrothermal synthesis -- Crystal structure -- Rietveld method -- Antiferromagnetism/Ferromagnetism
Аннотация: Co3Ge2O5(OH)4 relates to a specific group of 1:1 layered compounds with an ability to form either platy or tubular particles depending on chemical composition. Despite successful synthesis and perspective application, there is a lack of information on its crystal structure and magnetic properties, granted by Co ions. Co3Ge2O5(OH)4 phyllogermanate nanoparticles have been obtained using a hydrothermal method and characterised using powder X-ray diffraction and magnetisation measurements. Triclinic symmetry with a 1:P1 space group has been established. The unit cell contains three layers perpendicular to the c crystallographic direction, with 7.6 Å spacing and –b/3 shift of the middle layer. At a low magnetic field of 100 Oe the compound undergoes a magnetic transition at TN=5.2 K. The field of 9 T is not sufficient to take the sample to a magnetically saturated state with an asymptotic magnetic moment of 2.43 μB/Co2+. The estimations of the intralayer and interlayer exchange constants give values of J1/kB=2.75 K and J2/kB=0.25 K, respectively.

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Держатели документа:
Ioffe Institute, Polytechnicheskaya street, St.-Petersburg, 26194021, Russian Federation
Kirensky Institute of Physics, Akademgorodok 50, bld. 38, Krasnoyarsk, 660036, Russian Federation
Reshetnev Siberian State University of Science and Technology, 31, Krasnoyarsky Rabochy Av., Krasnoyarsk, 660037, Russian Federation

Доп.точки доступа:
Belskaya, N. A.; Khrapova, E. K.; Ivanova, A. A.; Eremin, E. V.; Еремин, Евгений Владимирович; Pavlov, S. I.; Krasilin, A. A.
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6.


   
    Structural and spectroscopic properties of new noncentrosymmetric self-activated borate Rb3EuB6O12 with B5O10 units / V. V. Atuchin [et al.] // Mater. Des. - 2018. - Vol. 140. - P. 488-494, DOI 10.1016/j.matdes.2017.12.004. - Cited References: 53. - We are grateful to Guochun Zhang for the crystal structure materials on K3YB6O12 and O. Tsydenova, A. Sarapulova for the consultations. The work was supported by Projects № 0356-2015-0412 of SB RAS Program № II.2P and № 0339-2016-0007. The reported study was funded by RFBR according to research projects 16-52-48010, 17-02-00920, 17-03-00886 and 17-52-53031 and RSF project 14-22-00143. The work was supported by Act 211 Government of the Russian Federation, contract № 02.A03.21.0011, and by the Ministry of Education and Science of the Russian Federation (5.5523.2017/8.9). This research was supported by Grant no. 8.2.01.2017 of Tomsk State University Academic D.I. Mendeleev Fund Program. . - ISSN 0264-1275
   Перевод заглавия: Структурные и спектроскопические характеристики самоактивированного бората Rb3EuB6O12 со структурными единицами B5O10
Кл.слова (ненормированные):
Rubidium rare earth borate -- Solid state reaction -- Rietveld refinement -- Raman -- Infrared spectroscopy -- Luminescence
Аннотация: New noncentrosymmetric double borate Rb3EuB6O12 was designed and synthesized by the solid state reaction method, and its crystallographic parameters were obtained by Rietveld analysis. This borate crystallizes in the trigonal space group R32 with cell parameters a = 13.4604(2) Å, c = 30.7981(5) Å, Z = 15. Its structure features a three-dimensional framework composed of the [B5O10]5 − groups that are bridged by Eu-O polyhedra. The existence of B5O10 group in the structure was confirmed by vibrational spectroscopy. Rb3EuB6O12 melts incongruently at 1101 K. The second harmonic generation effect of Rb3EuB6O12 is 16 times higher than that of the α-quartz standard. In the luminescence spectrum, the domination of a single prominent narrow line from the hypersensitive 5D0 - 7F2 manifold of Eu3 + ions is observed, while the 5D0 - 7F1 manifold and ultranarrow 5D0 - 7F0 line are of comparable peak intensity. These features are explained by a specific local symmetry of the Eu3+ ion within the crystal structure of Rb3EuB6O12.

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Держатели документа:
Laboratory of Optical Materials and Structures, Institute of Semiconductor Physics, SB RAS, Novosibirsk, Russian Federation
Functional Electronics Laboratory, Tomsk State University, Tomsk, Russian Federation
Laboratory of Single Crystal Growth, South Ural State University, Chelyabinsk, Russian Federation
Baikal Institute of Nature Management, SB RAS, Ulan-Ude, Russian Federation
Buryat State University, Ulan-Ude, Russian Federation
Laboratory of Coherent Optics, Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, Russian Federation
Institute of Nanotechnology, Spectroscopy and Quantum Chemistry, Siberian Federal University, Krasnoyarsk, Russian Federation
Laboratory of Nanodiagnostics and Nanolithography, Institute of Semiconductor Physics, SB RAS, Novosibirsk, Russian Federation
Laboratory of Molecular Spectroscopy, Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, Russian Federation
Laboratory of Crystal Physics, Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, Russian Federation
Department of Physics, Far Eastern State Transport University, Khabarovsk, Russian Federation
Siberian Federal University, Krasnoyarsk, Russian Federation
Department of Photonics and Laser Technologies, Siberian Federal University, Krasnoyarsk, Russian Federation
Department of Chemistry, Lomonosov Moscow State University, Moscow, Russian Federation

Доп.точки доступа:
Atuchin, V. V.; Subanakov, A. K.; Aleksandrovsky, A. S.; Александровский, Александр Сергеевич; Bazarov, B. G.; Bazarova, J. G.; Gavrilova, T. A.; Krylov, A. S.; Крылов, Александр Сергеевич; Molokeev, M. S.; Молокеев, Максим Сергеевич; Oreshonkov, A. S.; Орешонков, Александр Сергеевич; Stefanovich, S. Y.
}
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7.


   
    Probing Eu2+ luminescence from different crystallographic sites in Ca10M(PO4)7:Eu2+ (M = Li, Na, and K) with β-Ca3(PO4)2-type structure / M. Chen [et al.] // Chem. Mater. - 2017. - Vol. 29, Is. 17. - P. 7563-7570, DOI 10.1021/acs.chemmater.7b02724. - Cited References: 34. - The present work was supported by the National Natural Science Foundation of China (Grants 51722202, 91622125, and 51572023), Natural Science Foundations of Beijing (2172036), and Fundamental Research Funds for the Central Universities (FRF-TP-16-002A3). C.C.L. and C.C.S. acknowledge the financial support from the Ministry of Science and Technology of Taiwan (Contract No. MOST 104-2113-M-027-007-MY3), and M. Molokeev acknowledges support of the Russian Foundation for Basic Research (17-52-53031). . - ISSN 0897-4756
   Перевод заглавия: Исследование люминесценции Eu2+ в разных кристаллографических положениях в Ca10M(PO4)7:Eu2+ (M = Li, Na and K) со структурой типа beta-Ca3(PO4)2
Кл.слова (ненормированные):
Calcium -- Doping (additives) -- Excited states -- Light emission -- Lithium -- Luminescence -- Phosphors -- Photoluminescence -- Positive ions -- Rietveld refinement -- Single crystals -- Color tuning -- Crystallographic sites -- Different distributions -- Emission bands -- Local environments -- Long wavelength bands -- Luminescent centers -- Power diffraction data -- Europium
Аннотация: Eu2+ local environments in various crystallographic sites enable the different distributions of the emission and excitation energies and then realize the photoluminescence tuning of the Eu2+ doped solid state phosphors. Herein we report the Eu2+-doped Ca10M(PO4)7 (M = Li, Na, and K) phosphors with β-Ca3(PO4)2-type structure, in which there are five cation crystallographic sites, and the phosphors show a color tuning from bluish-violet to blue and yellow with the variation of M ions. The difference in decay rate monitored at selected wavelengths is related to multiple luminescent centers in Ca10M(PO4)7:Eu2+, and the occupied rates of Eu2+ in Ca(1), Ca(2), Ca(3), Na(4), and Ca(5) sites from Rietveld refinements using synchrotron power diffraction data confirm that Eu2+ enters into four cation sites except for Ca(5). Since the average bond lengths d(Ca-O) remain invariable in the Ca10M(PO4)7:Eu2+, the drastic changes of bond lengths d(M-O) and Eu2+ emission depending on the variation from Li to Na and K can provide insight into the distribution of Eu2+ ions. It is found that the emission band at 410 nm is ascribed to the occupation of Eu2+ in the Ca(1), Ca(2), and Ca(3) sites with similar local environments, while the long-wavelength band (466 or 511 nm) is attributed to Eu2+ at the M(4) site (M = Na and K). We show that the crystal-site engineering approach discussed herein can be applied to probe the luminescence of the dopants and provide a new method for photoluminescence tuning.

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Держатели документа:
Beijing Municipal Key Laboratory of New Energy Materials and Technologies, School of Materials Sciences and Engineering, University of Science and Technology Beijing, Beijing, China
Laboratory of Crystal Physics, Kirensky Institute of Physics, Federal Research Center, KSC SB RAS, Krasnoyarsk, Russian Federation
Siberian Federal University, Krasnoyarsk, Russian Federation
Department of Physics, Far Eastern State Transport University, Khabarovsk, Russian Federation
Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, Taiwan
National Synchrotron Radiation Research Center, Hsinchu, Taiwan

Доп.точки доступа:
Chen, M.; Xia, Z.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Lin, C. C.; Su, C.; Chuang, Y. -C.; Liu, Q.
}
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8.


   
    Preparation and structural properties of nonlinear optical borates K 2(1-x)Rb 2xAl 2B 2O 7, 0 ˂ x ˂ 0.75 / V. V. Atuchin [и др.] // J. Alloys Compd. - 2012. - Vol. 515. - P. 119-122, DOI 10.1016/j.jallcom.2011.11.115. - Cited References: 30. - This study was supported by SB RAS (Grant 34) and RFBR Grants 11-02-90706-mob_st and 11-03-00867a. . - ISSN 0925-8388
   Перевод заглавия: Получение и структурные свойства нелинейных оптических боратов K 2(1-x)Rb 2xAl 2B 2O 7, 0 ˂ x ˂ 0.75
РУБ Chemistry, Physical + Materials Science, Multidisciplinary + Metallurgy & Metallurgical Engineering + Aluminum + Crystal structure + Nonlinear optics + Rietveld analysis + Rubidium + Solid solutions + Structural properties + X ray powder diffraction
Рубрики:
UV-light generation
   Frequence-conversion

   K2Al2B2O7 crystal

   Composition ratio

   Mixed-crystals

   Growth

   KRbAl2B2O7

   NLO properties

   Non-linear optical

   Non-linear optical properties

   Rietveld analysis of X-ray powder diffraction data

   Solubility limits

   Space Groups

   Structural parameter

Кл.слова (ненормированные):
KRbAl2B2O7 -- Solid solution -- Crystal structure -- NLO properties
Аннотация: The structures of K 2(1-x)Rb 2xAl 2B 2O 7, x = 0.25, 0.5, 0.75, have been determined in space group P321 through Rietveld analysis of X-ray powder diffraction data. The solubility limit in K 2(1-x)Rb 2xAl 2B 2O 7 crystals has been estimated as x similar to 0.83-0.9. Nonlinear optical properties of KRbAl 2B 2O 7 have been verified by powder Kurtz-Perry method. Mechanisms of structural parameter variation in K 2Al 2B 2O 7 crystal family have been discussed.

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Доп.точки доступа:
Atuchin, V. V.; Bazarov, B. G.; Gavrilova, T. A.; Grossman, V. G.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Bazarova, Zh. G.
}
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9.


   
    Photoluminescence tuning in a novel Bi3+/Mn4+ co-doped La2ATiO6:(A = Mg, Zn) double perovskite structure: Phase transition and energy transfer / G. Xing [et al.] // J. Mater. Chem. C. - 2018. - Vol. 6, Is. 48. - P. 13136-13147, DOI 10.1039/c8tc05171b. - Cited References: 60. - This work was supported by the National Natural Science Foundation of China (Grant No. 51672259, 51672265, 21521092, 51750110511), the Engineering Research Center of Nano-Geomaterials of Ministry of Education, China University of Geosciences (Wuhan) (No. NGM2016KF002), the Key Research Program of Frontier Sciences, CAS (Grant No. YZDYSSW-JSC018), and the projects for science and technology development plan of Jilin province (20170414003GH), the Program for Jiangmen Innovative Research Team (No. [2017]385), and the major program of basic research and applied research of Guangdong Province (2017KZDXM083). . - ISSN 2050-7534
   Перевод заглавия: Управление люминесценцией в новой структуре двойного перовскита La2ATiO6:(A = Mg, Zn) допированным Bi3+/Mn4+: фазовый переход и перенос энергии
Кл.слова (ненормированные):
Crystal symmetry -- Energy transfer -- Light -- Luminescence -- Perovskite -- Phosphors -- Rietveld refinement
Аннотация: Red-emitting phosphors are indispensable compounds which are used to achieve a warm white light in phosphor-converted white light emitting diodes (pc-WLEDs). However, the luminous efficiency and stability of red phosphors are still big challenges. In this work, we developed red-emitting double perovskite phosphors La2ATiO6:Bi3+,Mn4+ (A = Mg, Zn) (LAT:Bi3+,Mn4+) and discuss the relationship between the double perovskite phosphor structure and the luminescence performance in detail. According to the Rietveld refinement results for the La2Mg(1−w)ZnwTiO6:Bi3+,Mn4+ (0 ≤ w ≤ 1) (LM(1−w)ZwT:Bi3+,Mn4+) solid solution, the proposed mechanism of the spectral adjustment is ascribed to the appearance of the phase transition, which results in a lower local structural symmetry of the [LaO12] polyhedron and the variation of the crystal field environment for Mn4+. Notably, this is the first time that the influence of the local structure variation on the luminescence tuning in double perovskite structure phosphors has been revealed, and this could offer guidance for the development of new phosphor system. By designing Mg2+/Zn2+ cation substitution, the internal quantum efficiency (IQE) is remarkably enhanced beyond 20%. In addition, we succeeded in achieving a Bi3+/Mn4+ co-doped energy transfer in the double perovskite structure phosphors. Owing to the Bi3+ → Mn4+ energy transfer in LAT, the red emission of the Mn4+ ions could be dramatically enhanced. The energy transfer efficiency of LAT:Bi3+,Mn4+ eventually exceeded 90%. The IQE and the thermal stability were all enhanced by around 30% compared to the non-co-doped samples, respectively. These results indicate that the Bi3+ → Mn4+ energy transfer strategy could play a pivotal role in the development of highly efficient red-emitting phosphors. The performance of the fabricated pc-WLEDs devices indicates that LAT:Bi3+,Mn4+ could be a promising red phosphor for near ultraviolet (n-UV) based warm pc-WLEDs.

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Держатели документа:
Engineering Research Center of Nano-Geomaterials, Ministry of Education, Faculty of Materials Science and Chemistry, China University of Geosciences, 388 Lumo Road, Wuhan, 430074, China
State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, China
Laboratory of Crystal Physics, Kirensky Institute of Physics, FRC KSC SB RAS, Krasnoyarsk, 660036, Russian Federation
Department of Physics, Far Eastern State Transport University, Khabarovsk, 680021, Russian Federation
Siberian Federal University, Krasnoyarsk, 660041, Russian Federation
School of Applied Physics and Materials, Wuyi University, Jiangmen, Guangdong, 529020, China

Доп.точки доступа:
Xing, G.; Feng, Y.; Pan, M.; Wei, Y.; Li, G.; Dang, P.; Liang, S.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Cheng, Z.; Lin, J.
}
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10.


   
    Photoluminescence of monoclinic Li3AlF6 crystals under vacuum ultraviolet and soft X-ray excitations / V. A. Pustovarov [et al.] // Opt. Mater. - 2015. - Vol. 49. - P. 201-207, DOI 10.1016/j.optmat.2015.09.011. - Cited References: 49. - This work was partly supported by the Ministry of Education and Science of the Russian Federation (the basic part of the government mandate); Center of Excellence "Radiation and Nuclear Technologies" (Competitiveness Enhancement Program of Ural Federal University, Russia), HASYLAB DESY (Projects Nos. 20110843, 20080119EC), European Social Fund ("Mobilitas" program, MJD219), Estonian Research Council (Institutional Research Funding IUT02-26) and Baltic Science Link project coordinated by the Swedish Research Council, VR . - ISSN 0925-3467
   Перевод заглавия: Люминесценция моноклинных кристаллов Li3AlF6 под вакуумным ультрафиолетом и мягким рентгеновским излучением
РУБ Materials Science, Multidisciplinary + Optics
Рубрики:
LiBaAlF6 single-crystals
   F-type centers

   LiBaF3 crystals

   Color-centers

   Recombination luminescence

   Rietveld refinement

   VUV spectroscopy

   Trapped excitons

   Energy-transfer

   Pure

Кл.слова (ненормированные):
Li3AlF6 -- Time-resolved luminescence -- VUV spectroscopy -- Defects
Аннотация: Using Bridgman technique we have grown monoclinic β-LiAF crystals suitable for optical studies, performed XRD-identification and Rietveld refinement of the crystal structure and carried out a photoluminescence study upon vacuum ultraviolet (VUV) and extreme ultraviolet (XUV)-excitations, using the low-temperature (T = 7.2 K) time-resolved VUV-spectroscopy technique. The intrinsic PL emission band at 340–350 nm has been identified as due to radiative recombination of self-trapped excitons. The electronic structure parameters were determined: bandgap E g ≈ 12.5 eV, energy threshold for creation of unrelaxed excitons 11.8 eV < E n < 12.5 eV . The PL emission bands at 320–325 and 450 nm were attributed to luminescence caused by lattice defects. We have discovered an efficient excitation of PL emission bands in the energy range of interband transitions ( E ex > 13.5 eV), as well as in the energy range of core transitions at 130 eV. We have revealed UV–VUV PL emission bands at 170 and 208 nm due to defects. A reasonable assumptions about the origin of the UV–VUV bands were discussed.

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Держатели документа:
Ural Federal University, 19, Mira Street, Yekaterinburg, Russian Federation
Institute of Physics, University of Tartu, 14c, Ravila Street, Tartu, Estonia
Kirensky Institute of Physics, SB RAS, Akademgorodok 50, Krasnoyarsk, Russian Federation
Far Eastern State Transport University, 47, Serysheva Street, Khabarovsk, Russian Federation
Institute of Geology and Mineralogy, SB RAS, 43, Russkaya Street, Novosibirsk, Russian Federation
Novosibirsk National Research University, 2, Pirogova Street, Novosibirsk, Russian Federation

Доп.точки доступа:
Pustovarov, V. A.; Пустоваров В. А.; Ogorodnikov, I. N.; Огородников И. Н.; Omelkov, S. I.; Омелков С. И.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Kozlov, A. V.; Козлов А. В.; Isaenko, L. I.; Исаенко Л. И.
}
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