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The Rectifying Contact of Hydrated Different Size YSZ Nanoparticles for Advanced Electronics

Alexander DoroshkevichDepartment of Material Science, Donetsk Institute for Physics and Engineering Named after O.O. Galkin, 03028 Kiev, UkraineAnna ZakharovaFaculty of Physics, M.V. Lomonosov Moscow State University, 119991 Moscow, RussiaБ. Л. ОксенгендлерIon-Plasma and Laser Technologies Institute after U. Arifov, Tashkent 100125, UzbekistanAndriy I. LyubchykNanotechcenter LLC, 03680 Kyiv, UkraineSergiy LyubchykREQUIMTE, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, 2829-516 Caparica, PortugalAndriy LyubchykREQUIMTE, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, 2829-516 Caparica, PortugalAlisa A. TatarinovaJoint Institute for Nuclear Research, 141980 Dubna, RussiaAndriy K. KirillovJoint Institute for Nuclear Research, 141980 Dubna, RussiaТ.А. VasilenkoThe Research Center for Geomechanics and Mining Problems, Saint-Petersburg Mining University, 199106 St.-Petersburg, RussiaOksana O. GorbanDepartment of Material Science, Donetsk Institute for Physics and Engineering Named after O.O. Galkin, 03028 Kiev, UkraineВ. И. БоднарчукJoint Institute for Nuclear Research, 141980 Dubna, RussiaN. N. NikiforovaIon-Plasma and Laser Technologies Institute after U. Arifov, Tashkent 100125, UzbekistanElena ZakharovaInstitute of Oil Refining and Petrochemistry FSBEI of HE USPTU, 450064 Salavat, RussiaMaria BalasoiuJoint Institute for Nuclear Research, 141980 Dubna, RussiaDiana MardareFaculty of Physics, “Alexandru Ioan Cuza” University of Iasi, 700506 Iasi, RomaniaCarmen MîţăFaculty of Chemistry, “Alexandru Ioan Cuza” University of Iasi, 700506 Iasi, RomaniaAnca StănculescuOptical Processes in Nanostructured Materials Laboratory, National Institute of Materials Physics, 077125 Magurele, RomaniaM.N. MirzayevInstitute of Radiation Problems, Azerbaijan National Academy of Sciences, Baku AZ1143, AzerbaijanA.A. NabiyevInstitute of Radiation Problems, Azerbaijan National Academy of Sciences, Baku AZ1143, AzerbaijanE. PopovInstitute for Nuclear Research and Nuclear Energy, Bulgarian Academy of Sciences, 1784 Sofia, BulgariaL. H. KhiemGraduate University of Science and Technology, Vietnam Academy of Science and Technology, Hanoi 11355, VietnamA. A. DonkovJoint Institute for Nuclear ResearchVesna TeofilovićFaculty of Technology, University of Novi Sad, 21000 Novi Sad, SerbiaB. JasińskaInstitute of Physics, Maria Curie-Skłodowska University, 20-031 Lublin, PolandDan ChiceaDepartment of Environmental Sciences, Physics Group, “Lucian Blaga” University of Sibiu, 550012 Sibiu, RomaniaTatyana Ye. KonstantinovaDepartment of Material Science, Donetsk Institute for Physics and Engineering Named after O.O. Galkin, 03028 Kiev, Ukraine
Nanomaterialsjournal2022en
ABI

Аннотация

The paper considers the new effects of the nanoscale state of matter, which open up prospects for the development of electronic devices using new physical principles. The contacts of chemically homogeneous nanoparticles of yttrium-stabilized zirconium oxide (ZrO2—x mol% Y2O3, x = 0, 3, 4, 8; YSZ) with different sizes of 7.5 nm and 9 nm; 7.5 nm and 11 nm; and 7.5 nm and 14 nm, respectively, was studied on direct current using nanostructured objects in the form of compacts obtained by high-hydrostatic pressure (HP-compacts of 300MPa). A unique size effect of the nonlinear (rectifying-type contact) dependence of the electrical properties (in the region U < 2.5 V, I ≤ 2.7 mA) of the contact of different-sized YSZ nanoparticles of the same chemical composition is revealed, which indicates the possibility of creating semiconductor structures of a new type (homogeneous electronics). The electronic structure of the near-surface regions of nanoparticles of studied oxide materials and the possibility of obtaining specifically rectifying properties of the contacts were studied theoretically. Models of surface states of the Tamm-type are constructed considering the Coulomb long-range action. The discovered energy variance and its dependence on the curvature of the surface of nanoparticles made it possible to study the conditions for the formation of a contact potential difference in cases of nanoparticles of the same radius (synergistic effect), different radii (doped and undoped variants), as well as to discover the possibility of describing a group of powder particles within the Anderson model. The determined effect makes it possible to solve the problem of diffusion instability of semiconductor heterojunctions and opens up prospects for creating electronic devices with a fundamentally new level of properties for use in various fields of the economy and breakthrough critical technologies.

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