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    Source: Mechanical engineering industry; Том 25, № 3 (2025); 83-87 ; Машиностроение; Том 25, № 3 (2025); 83-87 ; 2410-4744 ; 1990-8504

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    Source: Devices and Methods of Measurements; Том 16, № 2 (2025); 133-139 ; Приборы и методы измерений; Том 16, № 2 (2025); 133-139 ; 2414-0473 ; 2220-9506 ; 10.21122/2220-9506-2025-16-2

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    Relation: https://pimi.bntu.by/jour/article/view/959/725; Tritremmel C, Daniel R, Lechthaler M, Rudigier H, Polcik P, Mitterer C. Microstructure and mechanical properties of nanocrystalline Al‐Cr‐B‐N thin films. Surf. Coat. Technol. 2012;213:1–7. doi:10.1016/j.surfcoat.2012.09.055; Kumar S, Maity SR, Patnaik L. Friction and tribological behavior of bare nitrided, TiAlN and AlCrN coated MDC‐K hot work tool steel.Ceram. Int. 2020;(46):1728017294. DOI:10.1016/j.ceramint.2020.04.015; Kuznetsova T. [et al.]. Effect of metallic or nonmetallic element addition on surface topography and mechanical properties of CrN coatings. MDPI Nanomaterials. 2020;(10):2361. DOI:10.3390/nano10122361; Alexey Vereschaka, Filipp Milovich, Nikolay Andreev, Catherine Sotova, Islam Alexandrov, Alexander Muranov, Maxim Mikhailov, Aslan Tatarkanov. Investigation of the structure and phase composition of the microdroplets formed during the deposition of PVD coatings. Surface & Coatings Technology. 2022;(441):128574 DOI:10.1016/j.surfcoat.2022.128574; Yin-Yu Chang, Chung-En Chang Mechanical properties and tribological performance of multilayered AlCrBN/AlTiBN coatings Surface and Coatings Technology. 2025;(496):131691.; Yin-Yu Chang, Cheng-Hsi Chung, Zong-Hong Tsai, Jun-Ming TsaiTribological and mechanical properties of AlCrBN hard coating deposited using cathodic arc evaporation Surface and Coatings Technology. 2022;(432):128097.; Tritremmel C, Daniel R, Rudigier H, Polcik P, Mitterer C. Mechanical and tribological properties of Al-Ti-N/Al-Cr-B-N multilayer films synthesized by cathodic arc evaporation Surface and Coatings Technology. 2014;(246):57-63.; Grigoriev S. [et al.]. Specific features of the structure and properties of arc-PVD coatings depending on the spatial arrangement of the sample in the chamber. Vacuum. 2022;(200):111047. doi:10.1016/j.vacuum.2022.111047; Sheikh Haris Mukhtar, Wani MF, Rakesh Sehgal, Sharma MD. 108017Nano-mechanical and nano-tribological characterisation of self-lubricating MoS2 nanostructured coating for space applications. Tribology International. 2023;(178): Part A.; Behzad Sadeghi, Pasquale Cavaliere, Ali Shabani, Catalin Iulian Pruncu and Luciano Lamberti. Nanoscale wear: A critical review on its measuring methods and parameters affecting nano-tribology. Proc IMechE Part J: J Engineering Tribology 1–31 IMechE 2023. doi:10.1177/13506501231207525; Kuznetsova T. [et al.]. Features of wear of DLC-Si coating under microcontact conditions during the formation of secondary structures, Compos. Struct. 2023;(316):117039. doi:10.1016/J.COMPSTRUCT.2023.117039; Warcholinski B, Gilewicz A, Myslinski P, Dobruchowska E, Murzynski D, Kochmanski P, Rokosz K, Raaen S. Effect of nitrogen pressure and substrate bias voltage on the properties of Al–Cr–B–N coatings deposited using cathodic arc evaporation, Tribol. Int. 2021;(154):106744. doi:10.1016/j.triboint.2020.106744; https://pimi.bntu.by/jour/article/view/959

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    Source: Devices and Methods of Measurements; Том 16, № 1 (2025); 47-54 ; Приборы и методы измерений; Том 16, № 1 (2025); 47-54 ; 2414-0473 ; 2220-9506 ; 10.21122/2220-9506-2025-16-1

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    Relation: https://pimi.bntu.by/jour/article/view/923/716; Losic D; Voelcker NH. Nanoporous anodic aluminium oxide: Advances in surface engineering and emerging applications. Progress in Materials Science. 2013;58(5):636-704. DOI:10.1016/j.pmatsci.2013.01.002; Santos A; Kumeria T; Losic D. Nanoporous Anodic Aluminum Oxide for Chemical Sensing and Biosensors. TrAC Trends in Analytical Chemistry. 2013;44:2538. DOI:10.1016/j.trac.2012.11.007; Feng S; Ji W. Advanced Nanoporous Anodic Alumina-Based Optical Sensors for Biomedical Applications. Frontiers in Nanotechnology. 2021;3:678275-18. DOI:10.3389/fnano.2021; Liu S; Tian J; Zhang W. Fabrication and application of nanoporous anodic aluminum oxide: A review // Nanotechnology. 2021;32(22):222001-20. DOI:10.1088/1361-6528/abe25f; Ku C.-A. [et al.] Advances in the Fabrication of Nanoporous Anodic Aluminum Oxide and Its Applications to Sensors: A Review. Nanomaterials. 2023;13(21):(42): 2853-2895. DOI:10.3390/nano13212853; Gasenkova IV; Mukhurov NI; Zhvavyi SP; Kolesnik EE. Optical characteristics of Cr2O3/Al2O3 composite structure. High Temperature Material Processes. 2021;25(3):1-10.; Gasenkova IV; Mukhurov NI; Andruhovich IM. Parameters of anodic aluminum oxide determined from Fabry-Perot oscillations in specular reflectance spectra. BSUIR Reports. 2024;22(6):14-20. DOI:10.35596/1729-7648-2024-22-6-14-20. (In Russ.); Dlugunovich VA. [et al.]. Conversion of light polarization using nanoporous aluminum oxide films. Journal of Applied Spectroscopy. 2015;82(5):766-772. (In Russ.).; Yasin Mahsin Vahioh [et al.]. Threshold detectors of ionizing and ultraviolet radiation based on nanostructured substrates made of anodic aluminum oxide. Edited by N.I. Mukhurov. Minsk: Bestprint. 2016:178 p.; Melitz W. [et al.]. Kelvin probe force microscopy and its application. Surf. Sci. Rep. 2011;66:1-27.; Hui X. [et al.]. Multiparametric Kelvin Probe Force Microscopy for the Simultaneous Mapping of Surface Potential and Nanomechanical Properties. Langmuir. 2017;33(11):2725-2733. DOI:10.1021/acs.langmuir.6b04572; Findlay A. [et al.]. Non-Visual Defect Monitoring with Surface Voltage Mapping. ECS Journal of Solid State Science and Technology. 2015;5(4):3087-P3095. DOI:10.1149/2.0161604jss; Ibragimov HI; Korolkov VA. Electron work function in physical and chemical research. Moscow: Intermet Engineering; 2002;526 p. (In Russ.).; Hua G; Li D. Generic relation between the electron work function and Young's modulus of metals. Applied Physics Letters. 2011;99:041907-3. DOI:10.1063/1.3614475; Hua G; Li D. The correlation between the electron work function and yield strength of metals. Phys. Status Solidi B. 2012;249(8):1517-1520. DOI:10.1002/pssb.201248051; Lu H; Hua G; Li D. Dependence of the mechanical behavior of alloys on their electron work function – An alternative parameter for materials design. Applied Physics Letters. 2013;103(26):261902-4. DOI:10.1063/1.4852675; Liew Y. [et al.]. In Situ Time-Lapse SKPFM Investigation of Sensitized AA5083 Aluminum Alloy to Understand Localized Corrosion. J. Electrochem. Soc. 2020;167:141502–11. DOI:10.1149/1945-7111/abc30d; Zerweck U. [et al.]. Accuracy and resolution limits of Kelvin probe force microscopy. Phys. Rev. B. 2005;71:125424. DOI:10.1103/PhysRevB.71.125424; Tyavlovsky KL. [et al.]. Surface electric potential measurement with a static probe. Devices and Metods of Measurement. 2023;14(2):135-144. (In Russ.). DOI:10.21122/2220-9506-2023-14-2-135-144; https://pimi.bntu.by/jour/article/view/923

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    Source: Vestnik of Brest State Technical University; No. 2(134) (2024): Vestnik of Brest State Technical University; 93-97
    Вестник Брестского государственного технического университета; № 2(134) (2024): Вестник Брестского государственного технического университета; 93-97

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    Source: Vestnik of Brest State Technical University; No. 1(133) (2024): Vestnik of Brest State Technical University; 130-135
    Вестник Брестского государственного технического университета; № 1(133) (2024): Вестник Брестского государственного технического университета; 130-135

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