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    Academic Journal

    Συνεισφορές: O.V. Slatinskaia, G.O. Stepanov, O.V. Fartushnaya, E.V. Zubkov, A.D. Zatykina, O.M. Gizitdinova, N.S. Karpov, A.V. Smirnov, V.S. Boriskin, N.N. Rodionova, and A.O. Petrova are employees of NPF “Materia Medica Holding,” Moscow, Russia (full or part-time employment)., Работа финансировалось ООО «НПФ «МАТЕРИА МЕДИКА ХОЛДИНГ», Москва, Россия. Авторы благодарят Зайцеву Е.Н., Кухнинову А.А., Молодцову И.В., Пешкетову К.С., Химич Е.О. за помощь в проведении экспериментов. Авторы благодарят Ковальчука А.Л. за помощь в подготовке статьи, полезные замечания и уточнения.

    Πηγή: Fine Chemical Technologies; Vol 20, No 2 (2025); 167-184 ; Тонкие химические технологии; Vol 20, No 2 (2025); 167-184 ; 2686-7575 ; 2410-6593

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    Relation: https://www.finechem-mirea.ru/jour/article/view/2239/2118; https://www.finechem-mirea.ru/jour/article/view/2239/2119; Petrova A., Tarasov S., Gorbunov E., Stepanov G., Fartushnaya O., Zubkov E., Molodtsova I., Boriskin V., Zatykina A., Smirnov A., Zakharova S., Yaroshenko S., Ponomareva A., Petrova N., Kardash E., Ganina K., Rodionova N., Kovalchuk A. Epstein O. Phenomenon of Post-Vibration Interactions. Symmetry. 2024;16(8):958. https://doi.org/10.3390/sym16080958; Penkov N.V. Influence of the combined magnetic field and high dilution technology on the intrinsic emission of aqueous solutions. Water. 2023;15(3):599. https://doi.org/10.3390/w15030599; Penkov N. Antibodies processed using high dilution technology distantly change structural properties of IFNγ aqueous solution. Pharmaceutics. 2021;13(11):1864. https://doi.org/10.3390/pharmaceutics13111864; Penkov N., Penkova N. Analysis of emission infrared spectra of protein solutions in low concentrations. Front. Phys. 2020;8:624779. https://doi.org/10.3389/fphy.2020.624779; Novikov V.V. Effect of vibrational iterations of magnetized water on the physico-chemical properties of intact water. Russ. Phys. J. 2024;67(10):1718–1727. https://doi.org/10.1007/s11182-024-03304-z; Petrushanko I.I., Lobyshev V.I. Physicochemical properties of aqueous solutions obtained in a membrane electrolyzer. Biofhysics. 2004;49(1):17–26.; Kerwick M.I., Reddy S.M., Chamberlai A.H.L., Holt D.M. Electrochemical disinfection, an environmentally acceptable method of drinking water disinfection? Electrochim. Acta. 2005; 50(25–26):5270–5277. https://doi.org/10.1016/j.electacta.2005.02.074; Hanaoka K., Sun D., Lawrence R., Kamitani Y., Fernandes G. The mechanism of the enhanced antioxidant effects against superoxide anion radicals of reduced water produced by electrolysis. Biophys. Chem. 2004;107(1):71–82. https://doi.org/10.1016/j.bpc.2003.08.007; Novikov V.V, Yablokova E.V, Fesenko E.E. The Role of Water in the Effect of Weak Combined Magnetic Fields on Production of Reactive Oxygen Species (ROS) by Neutrophils. Appl. Sci. 2020;10(9):3326. https://doi.org/10.3390/app10093326; Novikov V.V., Yablokova E.V. Interaction between Highly Diluted Samples, Protein Solutions and Water in a Controlled Magnetic Field. Appl. Sci. 2022;12(10):5185. https://doi.org/10.3390/app12105185; Astashev M.E., Serov D.A., Sarimov R.M. Gudkov S.V. Influence of the Vibration Impact Mode on the Spontaneous Chemiluminescence of Aqueous Protein Solutions. Phys. Wave Phen. 2023;31:189–199. https://doi.org/10.3103/S1541308X23030020; Gudkov S.V., Penkov N.V., Baimler I.V., Lyakhov G.A., Pustovoy V.I., Simakin A.V., Sarimov R.M., Scherbakov I.A. Effect of Mechanical Shaking on the Physicochemical Properties of Aqueous Solutions. Int. J. Mol. Sci. 2020;21(21):8033. https://doi.org/10.3390/ijms21218033; Demangeat J-L. Water proton NMR relaxation revisited: Ultrahighly diluted aqueous solutions beyond Avogadro’s limit prepared by iterative centesimal dilution under shaking cannot be considered as pure solvent. J.Mol. Liquid. 2022;360:119500, https://doi.org/10.1016/j.molliq.2022.119500; Sarimov R.M., Simakin A.V., Matveeva T.A., Gudkov S.V., Lyakhov G.A., Pustovoy V.I., Troitskii A.V., Shcherbakov I.A. Influence of Magnetic Fields with Induction of 7 T on Physical and Chemical Properties of Aqueous NaCl Solutions. Appl. Sci. 2021;11(23):11466. https://doi.org/10.3390/app112311466; Lee S.H., Jeon S.I., Kim Y.S., Lee S.K. Changes in the electrical conductivity, infrared absorption, and surface tension of partially-degassed and magnetically-treated water. J. Mol. Liquid. 2013;187:230–237. https://doi.org/10.1016/j.molliq.2013.07.017; Jerman I, Ogrizek L, Krapež V.P, Jan L. Molecular Signal Transfer of Highly Diluted Antibodies to Interferon-Gamma Regarding Kind, Time, and Distance of Exposition. Int. J. Mol. Sci. 2024;25(1):656. https://doi.org/10.3390/ijms25010656; Elia V., Marrari L.A., Napoli E. Aqueous nanostructures in water induced by electromagnetic fields emitted by EDS: A conductometric study of fullerene and carbon nanotube EDS. J. Therm. Anal. Calorim. 2012;107(2):843–851. https://doi.org/10.1007/s10973-011-1484-y; Rashid M.M., Al Mesfer M.K., Naseem H., Danish M. Hydrogen production by water electrolysis: a review of alkaline water electrolysis, PEM water electrolysis and high temperature water electrolysis. Int. J. Eng. Adv. Technol. 2015;4(3):2249–8958.; Ninham B.W., Bolotskova P.N., Gudkov S.V., Baranova E.N., Kozlov V.A., Shkirin A.V., Vu M.T., Bunkin N.F. Nafion swelling in salt solutions in a finite sized cell: Curious phenomena dependent on sample preparation protocol. Polymers. 2022;14(8):1511. https://doi.org/10.3390/polym14081511.

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    Academic Journal

    Πηγή: Fine Chemical Technologies; Vol 13, No 1 (2018); 22-32 ; Тонкие химические технологии; Vol 13, No 1 (2018); 22-32 ; 2686-7575 ; 2410-6593 ; 10.32362/2410-6593-2018-13-1

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    Relation: https://www.finechem-mirea.ru/jour/article/view/131/132; Zhen X., Wang Y. An overview of methanol as an internal combustion engine fuel // Renew. Sustainable Energy Rev. 2015. V. 52. № 1. P. 477-493.; Mofijur M., Rasul M.G., Hyde J. Recent developments on internal combustion engine performance and emissions fuelled with biodieseldieselethanol blends // Procedia Eng. 2015. V. 105. № 1. P. 658-664.; Xu S., Fan S., Yaob H., Wang Y., Lang X., Lv P., Fang S. The phase equilibria of multicomponent gas hydrate in methanol/ethylene glycol solution based formation water // J. Chem. Thermodyn. 2017. V. 104. № 1. P. 212-217.; Sasaki Y., Tagashira S., Murakami Y., Kai S. Spectrophotometric determination of the alcohol content of alcoholic drinks with bis(O,O′-dipropyldithiophosphato)nickel(II) // Analyt. Sci. 1993. V. 9. № 4. P. 483-486.; Wang M.-L., Choong Y.-M., Su N.-W., Lee M.-H. Liquid chromatographic determination of alcohols in food and beverages with indirect polarimetric detection using a β-cyclodextrin mobile phase // Anal. Chem. 2002. V. 18. № 8. P. 903-906.; Wang M.-L, Choong Y.-M., Su N.-W, Lee M.-H. A rapid method for determination of ethanol in alcoholic beverages using capillary gas chromatography // J. Food and Drug Analysis. 2003. V. 11. № 2. P. 133-140.; Pontes H., Pinho P.G., Casal S., Carmo H., Santos A., Magalhaes T. GC determination of acetone, acetaldehyde, ethanol, and methanol in biological matrices and cell culture // J. Chromatogr. Sci. 2009.V. 47. № 4. P. 272-278.; Горб Е.П., Зайцев В.М., Самойлова Е.В., Рыбцов Е.В. Cовместное определение примесей этиленгликоля и метанола в ДЭГ методом газовой хроматографии // Газовая промышленность. 2006. Т. 8. № 1. С. 83-84.; Szostek B., Prickett K.B., Buck R.C. Determination of fluorotelomer alcohols by liquid chromatography/tandem mass spectrometry in water // Rapid Commun. Mass Spectrom. 2006. V. 20. № 19. Р. 2837-2844.; Duarte I.F., Barros A., Almeida C., Spraul M., Gil A.M. Multivariate analysis of NMR and FTIR data as a potential tool for the quality control of beer // J. Agricult. and Food Chem. 2004. V. 52. № 5. Р. 1031-1038.; Tetsuyuki T., Akio S., Tadao O. Fluorometric determination of ethanol in liquor samples by flowinjection analysis using an immobilized enzyme-reactor column with packing prepared by coupling alcohol oxidase and peroxidase onto chitosan beads // J. AOAC Int. 2001. V. 84. № 5. Р.1475-1483.; Williams M.B., Reese H.D. Colorimetric determination of ethyl alcohol // Anal. Chem. 1950. V. 22. № 12. Р. 1556-1561.; de Lima R.B., Varela H. Catalytic oxidation of ethanol on gold electrode in alkaline media // Gold Bulletin. 2008. V. 41. № 1. Р. 15-22.; Lourenco L.M., Stradiotto N.R. Determination of free glycerol in biodiesel at a platinum oxide surface using potential cycling technique // Talanta. 2009. V. 79. № 1. P. 92-96.; Caetano L.G., Takeuchi M., Santos A.L., de Oliveira M.F., Stradiotto N.R. Voltammetric determination of ethyl acetate in ethanol fuel using a Fe3+/Nafion®-coated glassy carbon electrode // Fuel. 2013. V. 106. № 1. P. 837-842.; Riyanto, Othman M.R., Salimon J. Analysis of ethanol using copper and nickel sheet electrodes by cyclic voltammetry // Malaysian J. Analyt. Sci. 2007. V. 11. № 2. P. 379-387.; Hu X., Wang J.A Simple route of modifying copper electrodes for the determination of methanol and ethylene glycol // J. Electroanalysis. 2012. V. 24. № 7. P. 1639-1645.; Pereira P.F., Sousa M.F., Munoz R.A., Richter E.M. Simultaneous determination of ethanol and methanol in fuel ethanol using cyclic voltammetry // Fuel. 2013. V. 103. № 1. P. 725-729.; Fleischmann M., Korinek K., Pletcher D. The kinetics and mechanism of the oxidation of amines and alcohols at oxide-covered nickel, silver, copper, and cobalt electrodes // J. Chem. Soc. Perkin Trans. 1972. V. 2. № 1. P. 1396-1403.; Мартынов Л.Ю., Наумова А.О., Зайцев Н.К., Ловчиновский И.Ю. Использование медных индикаторных электродов в вольтамперометрическом анализе // Тонкие химические технологии. 2016. Т. 11. № 5. С. 26-41.; Montenegro M.I., Queiros M.A., Daschbach J.L. Microelectrodes: Theory and Applications. Springer Verlag, 2013. V. 197. № 1. 497 p.; Будников Г.К., Евтюгин Г.А., Майстренко В.Н. Модифицированные электроды для вольтамперометрии в химии, биологии и медицине. М.: БИНОМ. Лаборатория знаний, 2010. 416 с.; Davis J., Moorcroft M.J., Wilkins S.J., Compton R.G., Cardosi M.F. Electrochemical detection of nitrate at a copper modified electrode under the influence of ultrasound // Electroanalysis. 2000. V. 12. № 1. P. 1363-1367.; Gamboa J.C.M., Peña R.C., Paixão T.R.L.C., Bertotti M. A renewable copper electrode as an amperometric flow detector for nitrate determination in mineral water and soft drink samples // Talanta. 2009. V. 80. № 2. 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    Academic Journal

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    Relation: Выбор электродных материалов для электрохимической стабилизации воды / Х. М. Диаб [и др.] // Вісник Нац. техн. ун-ту "ХПІ" : зб. наук. пр. Сер. : Хімія, хімічна технологія та екологія. – Харків : НТУ "ХПІ", 2017. – № 49 (1270). – С. 34-38.; http://repository.kpi.kharkov.ua/handle/KhPI-Press/37810

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