Supervalent doping of LiFePO4 for enhanced electrochemical performance

The orthophosphates LiFe0.9M0.1PO4 with the structure of olivine doped with vanadium and titanium were obtained by mechanochemically stimulated solidphase synthesis using high-energy planetary mill AGO-2 and subsequent annealing at 750 °C. It is shown that V- and Ti- ions do not completely substitut...

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Main Authors: N. V. Kosova, O. A. Podgornova
Format: Article
Language:English
Published: Uralʹskij federalʹnyj universitet imeni pervogo Prezidenta Rossii B.N. Elʹcina 2015-12-01
Series:Chimica Techno Acta
Subjects:
Online Access:https://journals.urfu.ru/index.php/chimtech/article/view/1693
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spelling doaj-b52de16938be48f892ca0fbfdd446cdd2020-11-25T00:13:51ZengUralʹskij federalʹnyj universitet imeni pervogo Prezidenta Rossii B.N. Elʹcina Chimica Techno Acta2409-56132411-14142015-12-012432634210.15826/chimtech.2015.2.4.0301653Supervalent doping of LiFePO4 for enhanced electrochemical performanceN. V. Kosova0O. A. Podgornova1Institute of Solid state chemistry and Mechanochemistry SB RAS, NovosibirskInstitute of Solid state chemistry and Mechanochemistry SB RAS, NovosibirskThe orthophosphates LiFe0.9M0.1PO4 with the structure of olivine doped with vanadium and titanium were obtained by mechanochemically stimulated solidphase synthesis using high-energy planetary mill AGO-2 and subsequent annealing at 750 °C. It is shown that V- and Ti- ions do not completely substitute for Fe2+ ions in the LiFePO4 structure. The remaining part of these ions involve in the formation of second phase with nashiko-like structure: monoclinic Li3V2(PO4)3 (space group P21/n ) and rhombohedral LiTi2(PO4)3 (space group R-3c). According to TEM, the average size of the particle of nanocomposites is about 100-300 nm. EMF of microanalysis showed that the small particles of secondary phases are segregated at the surface of larger particles of LiFePO4. On the charge-discharge curves of LiFe0.9M0.1PO4 there are plateau corresponding to LiFePO4 and the second phase. The doping with vanadium increases the resistance of the cycling of LiFePO4 and improves its cyclability at high speeds to a greater extent than in the case of doping with titanium.https://journals.urfu.ru/index.php/chimtech/article/view/1693LiFePO4супервалентное допированиемеханохимическая активацияэлектрохимическое циклирование
collection DOAJ
language English
format Article
sources DOAJ
author N. V. Kosova
O. A. Podgornova
spellingShingle N. V. Kosova
O. A. Podgornova
Supervalent doping of LiFePO4 for enhanced electrochemical performance
Chimica Techno Acta
LiFePO4
супервалентное допирование
механохимическая активация
электрохимическое циклирование
author_facet N. V. Kosova
O. A. Podgornova
author_sort N. V. Kosova
title Supervalent doping of LiFePO4 for enhanced electrochemical performance
title_short Supervalent doping of LiFePO4 for enhanced electrochemical performance
title_full Supervalent doping of LiFePO4 for enhanced electrochemical performance
title_fullStr Supervalent doping of LiFePO4 for enhanced electrochemical performance
title_full_unstemmed Supervalent doping of LiFePO4 for enhanced electrochemical performance
title_sort supervalent doping of lifepo4 for enhanced electrochemical performance
publisher Uralʹskij federalʹnyj universitet imeni pervogo Prezidenta Rossii B.N. Elʹcina
series Chimica Techno Acta
issn 2409-5613
2411-1414
publishDate 2015-12-01
description The orthophosphates LiFe0.9M0.1PO4 with the structure of olivine doped with vanadium and titanium were obtained by mechanochemically stimulated solidphase synthesis using high-energy planetary mill AGO-2 and subsequent annealing at 750 °C. It is shown that V- and Ti- ions do not completely substitute for Fe2+ ions in the LiFePO4 structure. The remaining part of these ions involve in the formation of second phase with nashiko-like structure: monoclinic Li3V2(PO4)3 (space group P21/n ) and rhombohedral LiTi2(PO4)3 (space group R-3c). According to TEM, the average size of the particle of nanocomposites is about 100-300 nm. EMF of microanalysis showed that the small particles of secondary phases are segregated at the surface of larger particles of LiFePO4. On the charge-discharge curves of LiFe0.9M0.1PO4 there are plateau corresponding to LiFePO4 and the second phase. The doping with vanadium increases the resistance of the cycling of LiFePO4 and improves its cyclability at high speeds to a greater extent than in the case of doping with titanium.
topic LiFePO4
супервалентное допирование
механохимическая активация
электрохимическое циклирование
url https://journals.urfu.ru/index.php/chimtech/article/view/1693
work_keys_str_mv AT nvkosova supervalentdopingoflifepo4forenhancedelectrochemicalperformance
AT oapodgornova supervalentdopingoflifepo4forenhancedelectrochemicalperformance
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