Surface Modification of ZrO2-3Y2O3 with Highintensity Pulsed N2+ Ion Beams; Russian Physics Journal; Vol. 63, iss. 1
| Parent link: | Russian Physics Journal Vol. 63, iss. 1.— 2020.— [P. 176-179] |
|---|---|
| Korporace: | Национальный исследовательский Томский политехнический университет Институт неразрушающего контроля Проблемная научно-исследовательская лаборатория электроники, диэлектриков и полупроводников, Национальный исследовательский Томский политехнический университет Инженерная школа новых производственных технологий Отделение материаловедения |
| Další autoři: | Gyngazov (Ghyngazov) S. A. Sergey Anatolievich, Zhu Xiaopeng, Pushkarev A. I. Aleksandr Ivanovich, Egorova Yu. I. Yulia Ivanovna, Matrenin S. V. Sergey Veniaminovich, Kostenko V. A. Valeria Alexandrovna, Zhang C. C., Lei Ming Kai |
| Shrnutí: | Title screen Режим доступа: по договору с организацией-держателем ресурса |
| Jazyk: | angličtina |
| Vydáno: |
2020
|
| Témata: | |
| On-line přístup: | https://doi.org/10.1007/s11182-020-02017-3 |
| Médium: | Elektronický zdroj Kapitola |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=662839 |
Podobné jednotky
Surface Modification of ZrO[2] -3Y[2]O[3] Ceramics with High-Intensity Pulsed N{2+} Ion Beams; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Vydáno: (2019)
Vydáno: (2019)
Surface modification of ZrO2-3Y2O3 ceramics with continuous Ar+ ion beams; Surface and Coatings Technology; Vol. 388
Vydáno: (2020)
Vydáno: (2020)
DIN 1.7035 Steel Modification with High Intensity Nitrogen Ion Implantation; Russian Physics Journal; Vol. 61, iss. 2
Vydáno: (2018)
Vydáno: (2018)
Investigation of the Features of High-Intensity Implantation of Nitrogen Ions into Titanium; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 17, s. 1
Vydáno: (2023)
Vydáno: (2023)
The influence of ion irradiation on the properties of ceramic silicon carbide; Energy Fluxes and Radiation Effects (EFRE-2016)
Vydáno: (2016)
Vydáno: (2016)
Swift heavy ion induced phase transformations in partially stabilized ZrO2; Radiation Physics and Chemistry; Vol. 192
Vydáno: (2022)
Vydáno: (2022)
Changing Mechanisms of High-Temperature Oxidation of Zr-1%Nb Alloy in Air and Steam by Surface Modification with Charged Particles; Journal of Materials Engineering and Performance; Vol. 34, iss. 13
Vydáno: (2025)
Vydáno: (2025)
Effect on microstructure of Fe80B13Si7 metallic glass irradiated by high intensity pulsed ion beam and He ions; Surface and Coatings Technology; Vol. 449
Vydáno: (2022)
Vydáno: (2022)
A method of real-time monitoring beam output stability of intense pulsed ion beam; Acta Physica Sinica; Vol. 72, iss. 17
Vydáno: (2023)
Vydáno: (2023)
Study on thermal shock irradiation resistance of CoCrFeMnNi high entropy alloy by high intensity pulsed ion beam; Journal of Nuclear Materials; Vol. 559
Vydáno: (2022)
Vydáno: (2022)
Plasma-immersion formation of high-intensity gaseous ion beams; Vacuum; Vol. 165
Vydáno: (2019)
Vydáno: (2019)
Effect on mechanics properties and microstructure of molybdenum by high intensity pulsed ion beam irradiation; Surface and Coatings Technology; Vol. 384
Vydáno: (2020)
Vydáno: (2020)
Effects on structure and properties of Zr55Al 10Cu30Ni5 metallic glass irradiated by high intensity pulsed ion beam; Applied Surface Science; Vol. 313
Vydáno: (2014)
Vydáno: (2014)
High-intensity ion beams with submillisecond duration for synergistic of ion implantation and energy impact on the surface; Energy Fluxes and Radiation Effects (EFRE); International Conference on Modification of Materials with Particle Beams and Plasma Flows (16th CMM)
Vydáno: (2022)
Vydáno: (2022)
Influence of Ion Treatment Modes on the Physical and Mechanical Properties of Zirconia Ceramics; Inorganic Materials: Applied Research; Vol. 12, iss. 2
Autor: Gyngazov (Ghyngazov) S. A. Sergey Anatolievich
Vydáno: (2021)
Autor: Gyngazov (Ghyngazov) S. A. Sergey Anatolievich
Vydáno: (2021)
Mixing in TI/STEEL system under High-intensity pulsed ion beam impact; High Temperature Material Processes: An International Quarterly of High-Technology Plasma Processes; Vol. 26, iss. 1
Vydáno: (2022)
Vydáno: (2022)
Formation of nanoscale carbon structures in the surface layer of metals under the impact of high intensity ion beam; Applied Surface Science; Vol. 310
Vydáno: (2014)
Vydáno: (2014)
Effect of Preliminary Irradiation of 321 Steel Substrates with High-Intense Pulsed Ion Beams on Scratch Test Results of Subsequently Deposited AlN Coatings; Coatings; Vol. 11, iss. 10
Vydáno: (2021)
Vydáno: (2021)
Influence of magnetic field of a radial focusing external magnetically insulated diode on emission behavior of intense pulsed ion beam; Nuclear Instruments and Methods in Physics Research B; Vol. 537
Vydáno: (2023)
Vydáno: (2023)
Study on the damage of Zr63.5Cu23Al9Fe4.5 amorphous and crystalline alloys irradiated by high intensity pulsed ion beam; Journal of Alloys and Compounds; Vol. 923
Vydáno: (2022)
Vydáno: (2022)
Combined Method of Cutting Tool Treatment; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Autor: Tarbokov V. A. Vladislav Aleksandrovich
Vydáno: (2019)
Autor: Tarbokov V. A. Vladislav Aleksandrovich
Vydáno: (2019)
Surface Modification of ZrO[2] -3Y[2] O[3] Ceramics with Continuous Ar{+} Ion Beams; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Vydáno: (2019)
Vydáno: (2019)
High-power ion beam sources for industrial application; Surface and Coatings Technology; Vol. 96, iss. 1
Vydáno: (1997)
Vydáno: (1997)
Repetitively-pulsed nitrogen implantation in titanium by a high-power density ion beam; Energy Fluxes and Radiation Effects (EFRE); International Conference on Modification of Materials with Particle Beams and Plasma Flows (16th CMM)
Vydáno: (2022)
Vydáno: (2022)
Modification of the microstructure and properties of martensitic steel during ultra-high dose high-intensity implantation of nitrogen ions; Surface and Coatings Technology; Vol. 388
Vydáno: (2020)
Vydáno: (2020)
Surface microstructure and phase structure of zirconia ceramics under intense pulsed ion beam irradiation; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 542
Vydáno: (2023)
Vydáno: (2023)
Study on the damage of Fe80B13Si7 alloy with different structure by high-intensity pulsed ion beam irradiation; Surface and Coatings Technology; Vol. 395
Vydáno: (2020)
Vydáno: (2020)
Focusing of intense pulsed ion beam by magnetically insulated diode for material research; Surface and Coatings Technology; Vol. 384
Vydáno: (2020)
Vydáno: (2020)
Modification of the WC-Co carbide surface with high-intensity pulsed ion beam; Journal of Physics: Conference Series; Vol. 1588 : Low Temperature Plasma during the Deposition of Functional Coatings
Vydáno: (2020)
Vydáno: (2020)
Features of titanium ion beams formation taking into account ion-electron emission realizing the synergy of high-intensity ion implantation and pulsed energy impact on the surface; Materials. Technologies. Design; Т. 5, № 4 (14)
Autor: D. O. Dimitry Olegovich
Vydáno: (2023)
Autor: D. O. Dimitry Olegovich
Vydáno: (2023)
Study of the Regularities of Low- and Super-Low-Energy High-intensity Metal Ion Beams Formation; Energy Fluxes and Radiation Effects (EFRE-2020 online)
Vydáno: (2020)
Vydáno: (2020)
Luminescent ceramic materials based on laser-synthesized europium-stabilized zirconia nanopowders; Ceramics International; Vol. 52, iss. 29, pt. B
Vydáno: (2025)
Vydáno: (2025)
Low energy, high intensity metal ion implantation method for deep dopant containing layer formation; Surface and Coatings Technology; Vol. 355
Vydáno: (2018)
Vydáno: (2018)
Ablation induced by intense pulsed ion beam and its effects on energy deposition on solid target; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 461
Vydáno: (2019)
Vydáno: (2019)
Shielding of energy deposition by ablation of plastics under intense pulsed ion beam irradiation; Vacuum; Vol. 174
Vydáno: (2020)
Vydáno: (2020)
Structural Modification of Graphene on Copper Substrates Irradiated by Nanosecond High-Intensity Ion Beam; Russian Physics Journal; Vol. 61, No. 8
Vydáno: (2018)
Vydáno: (2018)
Titanium Surface Roughness Modification Using Ion Beam and Mechanical Method; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Vydáno: (2019)
Vydáno: (2019)
The ablation of plastics by intense pulsed ion beam; Surface and Coatings Technology; Vol. 384
Vydáno: (2020)
Vydáno: (2020)
Thermal field induced by intense pulsed ion beam and its possible application in thermal diffusivity measurement; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 409
Vydáno: (2017)
Vydáno: (2017)
Special Aspects of High-Intensity Low-Energy Ion Implantation; Russian Physics Journal; Vol. 63, iss. 10
Vydáno: (2021)
Vydáno: (2021)
Podobné jednotky
-
Surface Modification of ZrO[2] -3Y[2]O[3] Ceramics with High-Intensity Pulsed N{2+} Ion Beams; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Vydáno: (2019) -
Surface modification of ZrO2-3Y2O3 ceramics with continuous Ar+ ion beams; Surface and Coatings Technology; Vol. 388
Vydáno: (2020) -
DIN 1.7035 Steel Modification with High Intensity Nitrogen Ion Implantation; Russian Physics Journal; Vol. 61, iss. 2
Vydáno: (2018) -
Investigation of the Features of High-Intensity Implantation of Nitrogen Ions into Titanium; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 17, s. 1
Vydáno: (2023) -
The influence of ion irradiation on the properties of ceramic silicon carbide; Energy Fluxes and Radiation Effects (EFRE-2016)
Vydáno: (2016)