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Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery

Metal phosphorus trichalcogenide (MPX(3)) materials have aroused substantial curiosity in the evolution of electrochemical storage devices due to their environment-friendliness and advantageous X-P synergic effects. The interesting intercalation properties generated due to the presence of wide van d...

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Autores principales: Lenus, Syama, Thakur, Pallavi, Samantaray, Sai Smruti, Narayanan, Tharangattu N., Dai, Zhengfei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865732/
https://www.ncbi.nlm.nih.gov/pubmed/36677596
http://dx.doi.org/10.3390/molecules28020537
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author Lenus, Syama
Thakur, Pallavi
Samantaray, Sai Smruti
Narayanan, Tharangattu N.
Dai, Zhengfei
author_facet Lenus, Syama
Thakur, Pallavi
Samantaray, Sai Smruti
Narayanan, Tharangattu N.
Dai, Zhengfei
author_sort Lenus, Syama
collection PubMed
description Metal phosphorus trichalcogenide (MPX(3)) materials have aroused substantial curiosity in the evolution of electrochemical storage devices due to their environment-friendliness and advantageous X-P synergic effects. The interesting intercalation properties generated due to the presence of wide van der Waals gaps along with high theoretical specific capacity pose MPX(3) as a potential host electrode in lithium batteries. Herein, we synthesized two-dimensional iron thio-phosphate (FePS(3)) nanoflakes via a salt-template synthesis method, using low-temperature time synthesis conditions in single step. The electrochemical application of FePS(3) has been explored through the construction of a high-capacity lithium primary battery (LPB) coin cell with FePS(3) nanoflakes as the cathode. The galvanostatic discharge studies on the assembled LPB exhibit a high specific capacity of ~1791 mAh g(−1) and high energy density of ~2500 Wh Kg(−1) along with a power density of ~5226 W Kg(−1), some of the highest reported values, indicating FePS(3)′s potential in low-cost primary batteries. A mechanistic insight into the observed three-staged discharge mechanism of the FePS(3)-based primary cell resulting in the high capacity is provided, and the findings are supported via post-mortem analyses at the electrode scale, using both electrochemical- as well as photoelectron spectroscopy-based studies.
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spelling pubmed-98657322023-01-22 Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery Lenus, Syama Thakur, Pallavi Samantaray, Sai Smruti Narayanan, Tharangattu N. Dai, Zhengfei Molecules Article Metal phosphorus trichalcogenide (MPX(3)) materials have aroused substantial curiosity in the evolution of electrochemical storage devices due to their environment-friendliness and advantageous X-P synergic effects. The interesting intercalation properties generated due to the presence of wide van der Waals gaps along with high theoretical specific capacity pose MPX(3) as a potential host electrode in lithium batteries. Herein, we synthesized two-dimensional iron thio-phosphate (FePS(3)) nanoflakes via a salt-template synthesis method, using low-temperature time synthesis conditions in single step. The electrochemical application of FePS(3) has been explored through the construction of a high-capacity lithium primary battery (LPB) coin cell with FePS(3) nanoflakes as the cathode. The galvanostatic discharge studies on the assembled LPB exhibit a high specific capacity of ~1791 mAh g(−1) and high energy density of ~2500 Wh Kg(−1) along with a power density of ~5226 W Kg(−1), some of the highest reported values, indicating FePS(3)′s potential in low-cost primary batteries. A mechanistic insight into the observed three-staged discharge mechanism of the FePS(3)-based primary cell resulting in the high capacity is provided, and the findings are supported via post-mortem analyses at the electrode scale, using both electrochemical- as well as photoelectron spectroscopy-based studies. MDPI 2023-01-05 /pmc/articles/PMC9865732/ /pubmed/36677596 http://dx.doi.org/10.3390/molecules28020537 Text en © 2023 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
Lenus, Syama
Thakur, Pallavi
Samantaray, Sai Smruti
Narayanan, Tharangattu N.
Dai, Zhengfei
Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery
title Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery
title_full Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery
title_fullStr Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery
title_full_unstemmed Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery
title_short Two-Dimensional Iron Phosphorus Trisulfide as a High-Capacity Cathode for Lithium Primary Battery
title_sort two-dimensional iron phosphorus trisulfide as a high-capacity cathode for lithium primary battery
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865732/
https://www.ncbi.nlm.nih.gov/pubmed/36677596
http://dx.doi.org/10.3390/molecules28020537
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