Otwarty dostęp

Physico-mechanical properties, structure, and phase composition of (BeO + TiO2)-ceramics containing TiO2 nanoparticles (0.1–2.0 wt.%)


Zacytuj

Qing YC, Zhou WC, Luo F, Zhu DM. Titanium carbide (MXene) nanosheets as promising microwave absorbers. Ceram Int. 2016;42:16412–6. QingYC ZhouWC LuoF ZhuDM Titanium carbide (MXene) nanosheets as promising microwave absorbers Ceram Int 2016 42 16412 6 10.1016/j.ceramint.2016.07.150 Search in Google Scholar

Lu G, Wancheng Z, Fa L, Dongmei Z, Jie W. Dielectric and microwave absorption properties of KNN/Al2O3 composite ceramics. Ceram Int. 2017;43(15):12731–5. LuG WanchengZ FaL DongmeiZ JieW Dielectric and microwave absorption properties of KNN/Al2O3 composite ceramics Ceram Int 2017 43 15 12731 5 10.1016/j.ceramint.2017.06.158 Search in Google Scholar

Drokin NA, Kiyko VS, Pavlov AV, Malkin AI. Electrophysical properties of BT-30 ceramics. New Refract. 2020;6:56–63 [in Russian]. DrokinNA KiykoVS PavlovAV MalkinAI Electrophysical properties of BT-30 ceramics New Refract 2020 6 56 63 [in Russian]. 10.17073/1683-4518-2020-6-56-63 Search in Google Scholar

Bukharin Ye N, Ilyina Ye N. Volumetric absorbers of microwave energy in the designs of modern vacuum microwave devices and measuring devices. M Radiotekhnika 2014;15(11):57–64 [in Russian]. Bukharin YeN Ilyina YeN Volumetric absorbers of microwave energy in the designs of modern vacuum microwave devices and measuring devices M Radiotekhnika 2014 15 11 57 64 [in Russian]. Search in Google Scholar

Mo S, Ching W. Electronic and optical properties of three phases of titanium dioxide: Rutile anatase brookite. Phy Rev B 1995;51(19):13023–32. MoS ChingW Electronic and optical properties of three phases of titanium dioxide: Rutile anatase brookite Phy Rev B 1995 51 19 13023 32 10.1103/PhysRevB.51.13023 Search in Google Scholar

Moravis EV, Olivera RGM, Castro AJN. Dielectric study in the microwave range for ceramic composites based on Sr2CoNbO6 and TiO2 mixtures. J Electron Mater. 2017;46(8):5193–200. MoravisEV OliveraRGM CastroAJN Dielectric study in the microwave range for ceramic composites based on Sr2CoNbO6 and TiO2 mixtures J Electron Mater 2017 46 8 5193 200 10.1007/s11664-017-5541-6 Search in Google Scholar

Oliveira RGM, Morais JEV, Freitas DB. The effects of TiO2 addition on the dielectric and microwave properties in the ceramic matrix BiVO4. In: International Conference on Intelligent Circuits and Systems (ICICS), Phagwara, India, 19–20 April 2018; 2018. pp. 461–4. OliveiraRGM MoraisJEV FreitasDB The effects of TiO2 addition on the dielectric and microwave properties in the ceramic matrix BiVO4 In: International Conference on Intelligent Circuits and Systems (ICICS) Phagwara, India 19–20 April 2018 2018 461 4 Search in Google Scholar

Lyapin LV, Pavlova MA, Semenyuk SS. Energy absorbers for microwave devices. Compon Technol. 2009;11:126–28 [in Russian]. LyapinLV PavlovaMA SemenyukSS Energy absorbers for microwave devices Compon Technol 2009 11 126 28 [in Russian]. Search in Google Scholar

Kiiko VS, Pavlov AV. Composite (BeO+TiO2)-ceramic for electronic engineering and other fields of technology. Refract Ind Ceram. 2018;57(6):423–6. KiikoVS PavlovAV Composite (BeO+TiO2)-ceramic for electronic engineering and other fields of technology Refract Ind Ceram 2018 57 6 423 6 10.1007/s11148-018-0168-6 Search in Google Scholar

Polyanskaya T.I., Panitskov V.I., Zharikhin S.V. Designing a retarding system for continuous Ku band TWTs with an operating frequency band of at least 16.5% and a gain of at least 30 dB. Microwave Electron Microelectron. 2019;1(1):379–86 [in Russian]. PolyanskayaT.I. PanitskovV.I. ZharikhinS.V. Designing a retarding system for continuous Ku band TWTs with an operating frequency band of at least 16.5% and a gain of at least 30 dB Microwave Electron Microelectron 2019 1 1 379 86 [in Russian]. Search in Google Scholar

Kolomiytseva NM, Bakunin GV, Polyanskaya TI, Panitskov VI, Filin Yu Y. Design of the slowing down system “looping waveguide” for the development of industrial basic technology for the manufacture of TWT in the W band. Microwave Electron Microelectron. 2018;1:148–54 [in Russian]. KolomiytsevaNM BakuninGV PolyanskayaTI PanitskovVI Filin YuY Design of the slowing down system “looping waveguide” for the development of industrial basic technology for the manufacture of TWT in the W band Microwave Electron Microelectron 2018 1 148 54 [in Russian]. Search in Google Scholar

Kiiko VS, Makurin Yu N, Ivanovskiy AL. Ceramics based on beryllium oxide: preparation, physicochemical properties and application. Yekaterinburg: UB RAS, 2006: 440 [in Russian]. KiikoVS Makurin YuN IvanovskiyAL Ceramics based on beryllium oxide: preparation, physicochemical properties and application Yekaterinburg UB RAS 2006 440 [in Russian]. Search in Google Scholar

Kiiko VS. The influence of titanium dioxide additives on the physicochemical and luminescent properties of beryllium ceramics. Inorgan Mater. 1994;30(5):688–93 [in Russian]. KiikoVS The influence of titanium dioxide additives on the physicochemical and luminescent properties of beryllium ceramics Inorgan Mater 1994 30 5 688 93 [in Russian]. Search in Google Scholar

Kiiko VS, Gorbunova MA, Makurin Yu N. Microstructure and electrical conductivity of the composite (BeO + TiO2)-ceramics. New Refract. 2007;11:68–74 [in Russian]. KiikoVS GorbunovaMA Makurin YuN Microstructure and electrical conductivity of the composite (BeO + TiO2)-ceramics New Refract 2007 11 68 74 [in Russian]. 10.1007/s11148-008-9012-8 Search in Google Scholar

Kiiko VS, Shabunin SN, Makurin Yu N. Obtaining, physicochemical properties and transmission of microwave radiation by ceramics based on BeO. Refract Tech Ceram. 2004; 10: 8–17 [in Russian]. KiikoVS ShabuninSN Makurin YuN Obtaining, physicochemical properties and transmission of microwave radiation by ceramics based on BeO Refract Tech Ceram 2004 10 8 17 [in Russian]. Search in Google Scholar

Kiiko VS, Pavlov AV. Ceramic for electronic engineering and other fields of technology. Refract Ind Ceram. 2018;58(6):687–92. KiikoVS PavlovAV Ceramic for electronic engineering and other fields of technology Refract Ind Ceram 2018 58 6 687 92 10.1007/s11148-018-0168-6 Search in Google Scholar

Kiiko VS, Pavlov AV, Bykov VA. Production and thermophysical properties of BeO ceramics with the addition of nanocrystalline titanium dioxide. Refract Ind Ceram. 2019;59(6):616–22. KiikoVS PavlovAV BykovVA Production and thermophysical properties of BeO ceramics with the addition of nanocrystalline titanium dioxide Refract Ind Ceram 2019 59 6 616 22 10.1007/s11148-019-00284-3 Search in Google Scholar

Lepeshev AA, Pavlov AV, Drokin NA, Malkin AI, Kiiko VS, Knyazev NS. Features of the preparation and study of electrophysical characteristics (BeO+TiO2)-ceramics by impedance spectroscopy. Refract Ind Ceram. 2019;60(3):309–17. LepeshevAA PavlovAV DrokinNA MalkinAI KiikoVS KnyazevNS Features of the preparation and study of electrophysical characteristics (BeO+TiO2)-ceramics by impedance spectroscopy Refract Ind Ceram 2019 60 3 309 17 10.1007/s11148-019-00359-1 Search in Google Scholar

Malkin A, Korotkov A, Knyazev N, Kijko V, Pavlov A. Approbation of the measurement method to determining the permittivity of micro- and nanopowders of titanium dioxide. In: International multi-conference on engineering, computer and information sciences, Novosibirsk, Russia, 21–27 October 2019; 2019, pp. 217–20. MalkinA KorotkovA KnyazevN KijkoV PavlovA Approbation of the measurement method to determining the permittivity of micro- and nanopowders of titanium dioxide In: International multi-conference on engineering, computer and information sciences Novosibirsk, Russia 21–27 October 2019 2019 217 20 10.1109/SIBIRCON48586.2019.8958025 Search in Google Scholar

Khaibullin RI, Tigirov LR, Ibragimov Sh Z. Ferromagnetism and two magnetic phases in rutile (TiO2) implanted with cobalt ions. Kazan. 2007;149(3):31–41 [in Russian]. KhaibullinRI TigirovLR IbragimovSh Z Ferromagnetism and two magnetic phases in rutile (TiO2) implanted with cobalt ions Kazan 2007 149 3 31 41 [in Russian]. Search in Google Scholar

Rakhadilov B, Kenesbekov A, Skakov M, Miniyzov A. Hydrogen and deuterium storage in tungsten when irradiation with Plasma beam. MetalConf, 2018; 27: pp. 1216–1221. RakhadilovB KenesbekovA SkakovM MiniyzovA Hydrogen and deuterium storage in tungsten when irradiation with Plasma beam MetalConf 2018 27 1216 1221 Search in Google Scholar

Rahadilov BK, Zhurerova LG, Sagdoldina ZB, Kenesbekov AB, Bayatanova LB. Morphological Changes in the Dislocation Structure of Structural Steel 20GL after Electrolytic-Plasma Hardening of the Surface. Journal of Surface Investigation, 2021;15(2):408–413. RahadilovBK ZhurerovaLG SagdoldinaZB KenesbekovAB BayatanovaLB Morphological Changes in the Dislocation Structure of Structural Steel 20GL after Electrolytic-Plasma Hardening of the Surface Journal of Surface Investigation 2021 15 2 408 413 10.1134/S1027451021020300 Search in Google Scholar

Li M, Hebenstreit W, Diebold U. Morphology change of oxygen-restructured TiO2 (110) surfaces by UHV annealing: formation of a low-temperature (1×2) structure. Phys Rev B. 2000;61(7):4926–33. LiM HebenstreitW DieboldU Morphology change of oxygen-restructured TiO2 (110) surfaces by UHV annealing: formation of a low-temperature (1×2) structure Phys Rev B 2000 61 7 4926 33 10.1103/PhysRevB.61.4926 Search in Google Scholar

Sekiya T, Kamei S, Kurita S. Luminescence of anatase TiO2 single crystals annealed in oxygen atmosphere. J Lumin. 2000;87–9:1140–42. SekiyaT KameiS KuritaS Luminescence of anatase TiO2 single crystals annealed in oxygen atmosphere J Lumin. 2000 87–9 1140 42 10.1016/S0022-2313(99)00570-0 Search in Google Scholar

Tikhov VA, Yatsyshen VV. Features of the scattering of a high-frequency electromagnetic field by a nanoscale ferromagnetic sphere. VolSU Bull. 2021;10(4):116–20 [in Russian]. TikhovVA YatsyshenVV Features of the scattering of a high-frequency electromagnetic field by a nanoscale ferromagnetic sphere VolSU Bull 2021 10 4 116 20 [in Russian]. Search in Google Scholar

Lia Y, Chen Ch, Pan X, Ni Y, Zhang S, Huang J, et al. Multiband micro-wave absorption films based on defective multiwalled carbon nanotubes added carbonyl-iron/acrylicresin. Physica B. 2009;404:1343–6. LiaY ChenCh PanX NiY ZhangS HuangJ Multiband micro-wave absorption films based on defective multiwalled carbon nanotubes added carbonyl-iron/acrylicresin Physica B 2009 404 1343 6 10.1016/j.physb.2008.12.015 Search in Google Scholar

Rodionov V.V. Mechanisms of interaction of microwave radiation with nanostructured carbon-containing materials: CSc thesis FGBOU VO. Southwest State University, Kursk. 2015:169 [in Russian]. RodionovV.V. Mechanisms of interaction of microwave radiation with nanostructured carbon-containing materials: CSc thesis FGBOU VO Southwest State University Kursk 2015 169 [in Russian]. Search in Google Scholar

Kandiel TA, Robben L, Alkaimad A, Bahnemann D. Brookite versus anatase TiO2 photocatalysts: phase transformations and photocatalytic activities. Photochem Photobiol Sci. 2013;12(4):602–9. KandielTA RobbenL AlkaimadA BahnemannD Brookite versus anatase TiO2 photocatalysts: phase transformations and photocatalytic activities Photochem Photobiol Sci 2013 12 4 602 9 10.1039/C2PP25217A Search in Google Scholar

eISSN:
2083-134X
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Materials Sciences, other, Nanomaterials, Functional and Smart Materials, Materials Characterization and Properties