Аннотация:
The synthesis of iron oxide nano- and microparticles in the PEG 3000–ammonium sulfate–water extraction system has been accomplished for the first time. Upon the addition of a solution of ammonia, iron oxide particles with sizes from 200nm to 10μm are produced at the interface. The phase composition of the obtained oxides consisting of magnetite with goethite impurity has been determined.
Тип публикации:
Статья
Язык публикации: английский
Образец цитирования:
V. M. Shkinev, Yu. A. Zakhodyaeva, R. Kh. Dzhenloda, O. B. Mokhodoeva, A. A. Voshkin, “Synthesis of magnetic iron oxide nanoparticles at the interface of the polyethylene glycol–ammonium sulfate–water extraction system”, Mendeleev Commun., 27:5 (2017), 485–486
Образцы ссылок на эту страницу:
https://www.mathnet.ru/rus/mendc2035
https://www.mathnet.ru/rus/mendc/v27/i5/p485
Эта публикация цитируется в следующих 15 статьяx:
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A Y Fedorov, A V Levina, “The possibility of using DES based on polypropylene glycol 425 and tetrabuthylammonium bromide in the extraction processes of transition metals”, IOP Conf. Ser.: Mater. Sci. Eng., 1212:1 (2022), 012024
N. M. Murashova, E. V. Yurtov, “State of the Art and Prospects for Studies of Structure Formation in Extraction Systems with Metal Compounds”, Theor Found Chem Eng, 56:1 (2022), 53
A Ya Fedorov, A V Levina, M I Fedorova, “Extraction of Eu(III), Gd(III), and Tb(III) in aqueous two-phase systems based on polyethylene glycol 1500-NaNO3-H2O with the addition of extractants (D2EHPA, TBP, TOMAN)”, IOP Conf. Ser.: Mater. Sci. Eng., 1212:1 (2022), 012012
A V Levina, M I Fedorova, “Vanadium(IV) ions extraction in the aqueous two-phase system based on poly(ethylene glycol)”, IOP Conf. Ser.: Mater. Sci. Eng., 1212:1 (2022), 012013
I V Zinov'eva, “Liquid-liquid extraction of Pt(IV) from hydrochloric acid solutions using PPG 425 – NaCl – H2O system”, IOP Conf. Ser.: Mater. Sci. Eng., 1212:1 (2022), 012011
O. B. Mokhodoeva, V. V. Maksimova, R. Kh. Dzhenloda, V. M. Shkinev, “Magnetic Nanoparticles Modified by Ionic Liquids in Environmental Analysis”, J Anal Chem, 76:6 (2021), 675
D. V. Pryazhnikov, I. V. Kubrakova, “Surface-Modified Magnetic Nanoscale Materials: Preparation and Study of Their Structure, Composition, and Properties”, J Anal Chem, 76:6 (2021), 685
M. I. Fedorova, A. V. Levina, Yu. A. Zakhodyaeva, A. A. Voshkin, “Interphase Distribution of V(IV) in the Polyethylene Glycol 1500–Sodium Nitrate–Water System”, Theor Found Chem Eng, 54:4 (2020), 604
Olga V. Kuznetsova, Olga B. Mokhodoeva, Valeria V. Maksimova, Rustam Kh. Dzhenloda, Maciej Jarosz, Valery M. Shkinev, Andrei R. Timerbaev, “High-resolution ICP-MS approach for characterization of magnetic nanoparticles for biomedical applications”, Journal of Pharmaceutical and Biomedical Analysis, 189 (2020), 113479
M. I. Fedorova, Yu. A. Zakhodyaeva, A. A. Voshkin, “Interphase Distribution of Fe(III) and Zn(II) in Chloride Systems with Aliquat 336 in Polypropylene Glycol 425”, Theor Found Chem Eng, 54:3 (2020), 425
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Yu. A. Zakhodyaeva, I. V. Zinov'eva, A. A. Voshkin, “Extraction of Iron(III) Chloride Complexes Using the Polypropylene Glycol 425–NaCl–H2O System”, Theor Found Chem Eng, 53:5 (2019), 735
T. A. Lastovina, A. P. Budnyk, S. P. Kubrin, A. V. Soldatov, “Microwave-assisted synthesis of ultra-small iron oxide nanoparticles for biomedicine”, Mendeleev Commun., 28:2 (2018), 167–169
E. M. Kostyukhin, L. M. Kustov, “Microwave-assisted synthesis of magnetite nanoparticles possessing superior magnetic properties”, Mendeleev Commun., 28:5 (2018), 559–561