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Tlenki szeroko-przerwowe : zastosowania

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EN
Wide band gap oxides : applications
Języki publikacji
PL
Abstrakty
PL
Tlenki szeroko-przerwowe są masowo stosowane w wielu dziedzinach, zaczynając od budownictwa, przemysłu spożywczego, w kosmetykach, w różnego rodzaju zasypkach, w medycynie. W artykule, na podstawie własnych prac, przedstawione są przykłady zastosowań tych tlenków w elektronice, fotowoltaice, w optoelektronice. Następnie omówione zostaną najnowsze zastosowania wybranych tlenków w medycynie.
EN
Wide-gap oxides are massively used in many fields, starting from construction industry, food industry, in cosmetics, in various kinds of powders, in medicine. The paper presents examples, based on own results, of oxides applications in electronics, photovoltaics, and optoelectronics. Next, the latest applications of selected oxides in medicine will be discussed.
Rocznik
Strony
20--23
Opis fizyczny
Bibliogr. 44 poz.
Twórcy
Bibliografia
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  • [18] Witkowski B.S., Dluzewski P., Kaszewski J., Wachnicki Ł., Gieraltowska S., Kurowska B., Godlewski M., 2018, Ultra-fast epitaxial growth of ZnO nano/microrods on a GaN substrate, using the microwave-assisted hydrothermal method, Materials Chemistry and Physics 205, 16.
  • [19] Pietruszka, R.; Witkowski, B. S.; Luka, G.; Wachnicki, L.; Gieraltowska, S.; Kopalko, K.; Zielony, E.; Bieganski, P.; Placzek-Popko, E.; Godlewski, M., 2014, Photovoltaic properties of ZnO nanorods/p-type Si heterojunction structures, Beilstein J. Nanotechnol. 5, 173-179.
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  • [21] Pietruszka R., Witkowski B. S., Gieraltowska S., Caban P., Wachnicki L., Zielony E., Gwozdz K., Bieganski P., Placzek Popko E., Godlewski M., 2015, New efficient solar cells structures based on Zinc Oxide nanorods, Solar Energy Materials and Solar Cells 143, 99-104.
  • [22] Pietruszka R., Schifano R., Krajewski T A., Witkowski B.S., Wachnicki L., Zielony E., Gwozdz K., Bieganski P., Placzek-Popko E., Godlewski M., 2016, Improved efficiency of n-ZnO/p-Si based photovoltaic cells by band offset engineering, Solar Energy Materials and Solar Cells 147, 164-170.
  • [23] Pietruszka R., Witkowski B.S., Zielony E., Gwozdz K., Placzek-Popko E., Godlewski M., 2017, ZnO/Si heterojunction solar cell fabricated by atomic layer deposition and hydrothermal methods, Solar Energy 155, 1282-1288.
  • [24] Stakhira P.Y., Grygorchak I.I., Cherpak V.V., Ivastchyshyn F.O., Volynyuk D.Y., Luka G., Godlewski M., Guziewicz E., Pakhomov G.L., Hotra Z.Y., 2010, Long time stability of ITO/NiPc/ ZnO/Al devices with ZnO buffer layer formed by atomic layer deposition technique–impedance spectroscopy analysis, Materials Science and Engineering B 172, 272.
  • [25] Wincukiewicz A., Jasinski J.B., Tokarczyk M., Pietruszka R., Godlewski M., Kaminska M., 2021, The effects of doping and coating on degradation kinetics in perovskites, Solar Energy Materials and Solar Cells 230, 111142.
  • [26] Luka G., Stakhira P., Cherpak V., Volynyuk D., Hotra Z., Godlewski M., Guziewicz E., Witkowski B., Paszkowicz W., Kostruba A., 2010, The properties of tris (8-hydroxyquinoline) aluminum organic light emitting diode with undoped zinc oxide anode layer, J. Appl. Phys. 108, 064518.
  • [27] Grzanka S., Łuka G., Krajewski T.A., Guziewicz E., Jachymek R., Purgal W., Wiśniewska R., Sarzyńska A., Bering-Staniszewska A., Godlewski M., Perlin P., 2011, Thin film ZnO as sublayer for electric contact for bulk GaN with low electron concentration, Acta Physica Polonica (a) 119, 672.
  • [28] Przezdziecka E., Chusnutdinow S., Guziewicz E., Snigurenko D., Stachowicz M., Kopalko K., Reszka A., Kozanecki A., 2015, The p-ZnO:N/i-Al2O3/n-GaN heterostructure-electron beam induced profiling, electrical properties and UV detectivity, J. Phys. D: Appl. Phys. 48, 325105.
  • [29] Witkowski B.S., Wachnicki L., Gieraltowska S., Sybilski P., Kopalko K., Stachowicz M., Godlewski M., 2014, UV detector based on zinc oxide nanorods obtained by the hydrothermal method, physica status solidi (c) 11, 1447-1451.
  • [30] Kielbik P., Kaszewski J., Rosowska J., Wolska E., Witkowski B.S., Gralak M.A., Gajewski Z., Godlewski M., Godlewski M.M., 2017, Biodegradation of the ZnO:Eu nanoparticles in the tissues of adult mouse after alimentary application, Nanomedicine: Nanotechnology, Biology, and Medicine 13, (3), 843–852.
  • [31] Godlewski M.M., Kaszewski J., Kielbik P., Olszewski J., Lipinski W., Slonska-Zielonka A., Rosowska J., Witkowski B.S., Gralak M.A., Gajewski Z., Godlewski M., 2020, New generation of oxide-based nanoparticles for the applications in early cancer detection and diagnostics (review), Nanotechnology Reviews 9, 274-302.
  • [32] Dominik M., Leśniewski A., Janczuk M., Niedziółka-Jönsson J., Hołdyński M., Wachnicki Ł., Godlewski M., Bock W.J., Śmietana M., 2017, Titanium oxide thin films obtained with physical and chemical vapour deposition methods for optical biosensing purposes, Biosensors and Bioelectronics 93, 102.
  • [33] Godlewski M., Gierałtowska S., Wachnicki Ł., Pietuszka R., Witkowski B.S., Słońska A., Gajewski Z., Godlewski M.M., 2017, High-k oxides by Atomic Layer Deposition - applications in biology and medicine, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films 35, 021508.
  • [34] Kiełbik P., Kaszewski J., Dominiak B., Damentko M., Serafińska I., Rosowska J., Gralak M.A.; Krajewski M., Witkowski B.S., Gajewski Z., Godlewski M., Godlewski M.M., 2019, Preliminary studies on biodegradable zinc oxide nanoparticles doped with Fe as a potential form of iron delivery to the living organism, Nanoscale Research Letters, 14, Article number: 373.
  • [35] Kiełbik P., Jończy A., Kaszewski J., Gralak M., Rosowska J., Sapierzyński R., Witkowski B., Wachnicki Ł., Lawniczak-Jablonska K., Kuzmiuk P., Lipiński P.M., Godlewski M., Godlewski M.M., 2021, Biodegradable zinc oxide nanoparticles doped with iron as carriers of exogenous iron in the living organism, Pharmaceuticals 14, 859.
  • [36] Seweryn A., Pielok A., Lawniczak-Jablonska K., Pietruszka R., Marcinkowska K., Sikora M., Witkowski B.S., Godlewski M., Marycz K., Smieszek A., 2020, Zirconium Oxide thin films obtained by Atomic Layer Deposition technology abolish the anti-osteogenic effect resulting from miR-21 inhibition in the pre-osteoblastic MC3T3 cell line, International Journal of Nanomedicine, 15, 1595-1610.
  • [37] Smieszek A., Seweryn A., Marcinkowska K., Sikora M., Lawniczak-Jablonska K., Witkowski B.S., Kuzmiuk P., Godlewski M., Marycz K., 2020, Titanium dioxide thin films obtained by Atomic Layer Deposition promotes osteoblasts viability and differentiation potential while inhibits osteoclast activity - potential application for osteoporotic bone regeneration, Materials 13, 4817.
  • [38] Seweryn A., Alicka M., Fal A., Ławniczak-Jabłońska K., Ożga M., Kuzmiuk P., Godlewski M., Marycz K., 2020, Hafnium (IV) oxide obtained by atomic layer deposition technology promotes early osteogenesis via activation of Runx2-OPN-mir21 A axis while inhibits osteoclasts activity, Journal of Nanobiotechnology, 18, 132.
  • [39] Wójcik A., Godlewski M., Guziewicz E., Kopalko K., Jakieła R., Kiecana M., Sawicki M., Guziewicz M., Putkonen M., Niinistö L., Dumont Y., Keller N., 2007, Low temperature growth of Zn- MnO: A way to avoid inclusions of foreign phases and spinodal decomposition, Appl. Phys. Lett. 90, 082502.
  • [40] Łukasiewicz M., Witkowski B., Godlewski M., Guziewicz E., Sawicki M., Paszkowicz W., Jakieła R., Krajewski T., Łuka G., 2020, Effects related to deposition temperature of ZnCoO films grown by Atomic Layer Deposition – uniformity of Co distribution, structural, electric and magnetic properties, Phys. Status Solidi (b) 247, 1666.
  • [41] Godlewski M. , Guziewicz E., Łukasiewicz M.I., Kowalik I.A., Sawicki M., Witkowski B.S., Jakieła R., Lisowski W., Sobczak J.W., Krawczyk M., 2011, Role of interface in ferromagnetism of (Zn,Co)O films, Physica Status Solidi (b) 248, 1596.
  • [42] Sawicki M., Guziewicz E., Lukasiewicz M.I. , Proselkov O., Kowalik I.A., Lisowski W., Dłużewski P., Wittlin A., Jaworski M., Wolska A., Paszkowicz W., Jakieła R., Witkowski B.S., Wachnicki L., Klepka M.T.,. Luque F.J, Arvanitis D., Sobczak J.W., Krawczyk M., Jablonski A., Stefanowicz W., Sztenkiel D., Godlewski M., Dietl T., 2013, Homogeneous and heterogeneous magnetism in (Zn,Co)O: From a random antiferromagnet to a dipolar superferromagnet by changing the growth temperature, Physical Review B 88, 085204.
  • [43] Mroczyński R., Taube A., Gierałtowska S., Guziewicz E., Godlewski M., 2012, Application of deposited by ALD HfO2 and Al2O3 layers in double-gate dielectric stacks for non-volatile semiconductor memory (NVSM) devices, Applied Surface Science 258, 8366.
  • [44] Ozga M., Kaszewski J., Seweryn A., Sybilski P., Godlewski M., Witkowski B.S., 2020, Ultra-fast growth of copper oxide (II) thin films using hydrothermal method, Materials Science in Semiconductor Processing 120, 105279.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-464af1a4-b91f-4509-9ba3-3610d2c64bfa
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