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Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries

All-solid-state Li-ion batteries (LIBs) with a solid electrolyte instead of a liquid one demonstrate significantly higher safety in contrast with the conventional liquid-based LIBs. An inorganic NASICON-type Li conductor Li(1.3)Al(0.3)Ti(1.7)(PO(4))(3) (LATP) is a promising solid electrolyte with an...

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Autores principales: Mashekova, Aiym, Baltash, Yelnury, Yegamkulov, Mukagali, Trussov, Ivan, Bakenov, Zhumabay, Mukanova, Aliya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9574870/
https://www.ncbi.nlm.nih.gov/pubmed/36321112
http://dx.doi.org/10.1039/d2ra05782d
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author Mashekova, Aiym
Baltash, Yelnury
Yegamkulov, Mukagali
Trussov, Ivan
Bakenov, Zhumabay
Mukanova, Aliya
author_facet Mashekova, Aiym
Baltash, Yelnury
Yegamkulov, Mukagali
Trussov, Ivan
Bakenov, Zhumabay
Mukanova, Aliya
author_sort Mashekova, Aiym
collection PubMed
description All-solid-state Li-ion batteries (LIBs) with a solid electrolyte instead of a liquid one demonstrate significantly higher safety in contrast with the conventional liquid-based LIBs. An inorganic NASICON-type Li conductor Li(1.3)Al(0.3)Ti(1.7)(PO(4))(3) (LATP) is a promising solid electrolyte with an ionic conductivity of up to 10(−3) S cm(−1) at room temperature. However, LATP gradually degrades in contact with Li metal because of reduction of Ti(4+) to Ti(3+), resulting in a lower ionic conductivity at the electrolyte–electrode interface. Cation doping is a promising approach to stabilize the LATP structure and mitigate the Ti reduction. Here, we report our findings on the alternative polycationic doping strategy of the LiTi(2)(PO(4))(3) (LTP) structure, when a heterovalent cation is added along with Al. In particular, we studied the effect of tetravalent and divalent cation dopants (Zr, Hf, Ca, Mg, Sr) of LATP on the Li-ion conduction and Ti reduction during interaction with lithium metal. The samples were prepared by molten flux and solid-state reaction methods. The structure, morphology, and ion-transport properties of the samples were analyzed. The activation energy of Li-ion migration in all synthesized systems was calculated based on the electrochemical impedance spectroscopy (EIS) data retrieved for a temperature range of 25–100 °C. From the obtained results, the tetravalent doping (Zr(4+) and Hf(4+)) appeared to be a more promissing route to improve the LATP electrolyte than the divalent doping (Mg(2+), Ca(2+), and Sr(2+)). The X-ray photoelectron spectroscopy analysis of the samples after their contact with lithium provided the data, which could shed light on the effect of the incorporated dopants onto the Ti reduction.
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spelling pubmed-95748702022-10-31 Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries Mashekova, Aiym Baltash, Yelnury Yegamkulov, Mukagali Trussov, Ivan Bakenov, Zhumabay Mukanova, Aliya RSC Adv Chemistry All-solid-state Li-ion batteries (LIBs) with a solid electrolyte instead of a liquid one demonstrate significantly higher safety in contrast with the conventional liquid-based LIBs. An inorganic NASICON-type Li conductor Li(1.3)Al(0.3)Ti(1.7)(PO(4))(3) (LATP) is a promising solid electrolyte with an ionic conductivity of up to 10(−3) S cm(−1) at room temperature. However, LATP gradually degrades in contact with Li metal because of reduction of Ti(4+) to Ti(3+), resulting in a lower ionic conductivity at the electrolyte–electrode interface. Cation doping is a promising approach to stabilize the LATP structure and mitigate the Ti reduction. Here, we report our findings on the alternative polycationic doping strategy of the LiTi(2)(PO(4))(3) (LTP) structure, when a heterovalent cation is added along with Al. In particular, we studied the effect of tetravalent and divalent cation dopants (Zr, Hf, Ca, Mg, Sr) of LATP on the Li-ion conduction and Ti reduction during interaction with lithium metal. The samples were prepared by molten flux and solid-state reaction methods. The structure, morphology, and ion-transport properties of the samples were analyzed. The activation energy of Li-ion migration in all synthesized systems was calculated based on the electrochemical impedance spectroscopy (EIS) data retrieved for a temperature range of 25–100 °C. From the obtained results, the tetravalent doping (Zr(4+) and Hf(4+)) appeared to be a more promissing route to improve the LATP electrolyte than the divalent doping (Mg(2+), Ca(2+), and Sr(2+)). The X-ray photoelectron spectroscopy analysis of the samples after their contact with lithium provided the data, which could shed light on the effect of the incorporated dopants onto the Ti reduction. The Royal Society of Chemistry 2022-10-17 /pmc/articles/PMC9574870/ /pubmed/36321112 http://dx.doi.org/10.1039/d2ra05782d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Mashekova, Aiym
Baltash, Yelnury
Yegamkulov, Mukagali
Trussov, Ivan
Bakenov, Zhumabay
Mukanova, Aliya
Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries
title Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries
title_full Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries
title_fullStr Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries
title_full_unstemmed Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries
title_short Polycationic doping of the LATP ceramic electrolyte for Li-ion batteries
title_sort polycationic doping of the latp ceramic electrolyte for li-ion batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9574870/
https://www.ncbi.nlm.nih.gov/pubmed/36321112
http://dx.doi.org/10.1039/d2ra05782d
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