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Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane

Lithium ions play a crucial role in the energy storage industry. Finding suitable lithium-ion-conductive membranes is one of the important issues of energy storage studies. Hence, a perovskite-based membrane, Lithium Lanthanum Titanate (LLTO), was innovatively implemented in the presence and absence...

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Autores principales: Golmohammadi, Mahsa, Habibi, Meysam, Rezvantalab, Sima, Mehdizadeh Chellehbari, Yasin, Maleki, Reza, Razmjou, Amir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699554/
https://www.ncbi.nlm.nih.gov/pubmed/36363596
http://dx.doi.org/10.3390/membranes12111042
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author Golmohammadi, Mahsa
Habibi, Meysam
Rezvantalab, Sima
Mehdizadeh Chellehbari, Yasin
Maleki, Reza
Razmjou, Amir
author_facet Golmohammadi, Mahsa
Habibi, Meysam
Rezvantalab, Sima
Mehdizadeh Chellehbari, Yasin
Maleki, Reza
Razmjou, Amir
author_sort Golmohammadi, Mahsa
collection PubMed
description Lithium ions play a crucial role in the energy storage industry. Finding suitable lithium-ion-conductive membranes is one of the important issues of energy storage studies. Hence, a perovskite-based membrane, Lithium Lanthanum Titanate (LLTO), was innovatively implemented in the presence and absence of solvents to precisely understand the mechanism of lithium ion separation. The ion-selective membrane’s mechanism and the perovskite-based membrane’s efficiency were investigated using Molecular Dynamic (MD) simulation. The results specified that the change in the ambient condition, pH, and temperature led to a shift in LLTO pore sizes. Based on the results, pH plays an undeniable role in facilitating lithium ion transmission through the membrane. It is noticeable that the hydrogen bond interaction between the ions and membrane led to an expanding pore size, from (1.07 Å) to (1.18–1.20 Å), successfully enriching lithium from seawater. However, this value in the absence of the solvent would have been 1.1 Å at 50 °C. It was found that increasing the temperature slightly impacted lithium extraction. The charge analysis exhibited that the trapping energies applied by the membrane to the first three ions (Li(+), K(+), and Na(+)) were more than the ions’ hydration energies. Therefore, Li(+), K(+), and Na(+) were fully dehydrated, whereas Mg(2+) was partially dehydrated and could not pass through the membrane. Evaluating the membrane window diameter, and the combined effect of the three key parameters (barrier energy, hydration energy, and binding energy) illustrates that the required energy to transport Li ions through the membrane is higher than that for other monovalent cations.
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spelling pubmed-96995542022-11-26 Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane Golmohammadi, Mahsa Habibi, Meysam Rezvantalab, Sima Mehdizadeh Chellehbari, Yasin Maleki, Reza Razmjou, Amir Membranes (Basel) Article Lithium ions play a crucial role in the energy storage industry. Finding suitable lithium-ion-conductive membranes is one of the important issues of energy storage studies. Hence, a perovskite-based membrane, Lithium Lanthanum Titanate (LLTO), was innovatively implemented in the presence and absence of solvents to precisely understand the mechanism of lithium ion separation. The ion-selective membrane’s mechanism and the perovskite-based membrane’s efficiency were investigated using Molecular Dynamic (MD) simulation. The results specified that the change in the ambient condition, pH, and temperature led to a shift in LLTO pore sizes. Based on the results, pH plays an undeniable role in facilitating lithium ion transmission through the membrane. It is noticeable that the hydrogen bond interaction between the ions and membrane led to an expanding pore size, from (1.07 Å) to (1.18–1.20 Å), successfully enriching lithium from seawater. However, this value in the absence of the solvent would have been 1.1 Å at 50 °C. It was found that increasing the temperature slightly impacted lithium extraction. The charge analysis exhibited that the trapping energies applied by the membrane to the first three ions (Li(+), K(+), and Na(+)) were more than the ions’ hydration energies. Therefore, Li(+), K(+), and Na(+) were fully dehydrated, whereas Mg(2+) was partially dehydrated and could not pass through the membrane. Evaluating the membrane window diameter, and the combined effect of the three key parameters (barrier energy, hydration energy, and binding energy) illustrates that the required energy to transport Li ions through the membrane is higher than that for other monovalent cations. MDPI 2022-10-26 /pmc/articles/PMC9699554/ /pubmed/36363596 http://dx.doi.org/10.3390/membranes12111042 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Golmohammadi, Mahsa
Habibi, Meysam
Rezvantalab, Sima
Mehdizadeh Chellehbari, Yasin
Maleki, Reza
Razmjou, Amir
Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane
title Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane
title_full Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane
title_fullStr Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane
title_full_unstemmed Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane
title_short Mechanism Understanding of Li-ion Separation Using A Perovskite-Based Membrane
title_sort mechanism understanding of li-ion separation using a perovskite-based membrane
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699554/
https://www.ncbi.nlm.nih.gov/pubmed/36363596
http://dx.doi.org/10.3390/membranes12111042
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