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Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering

Fe-based sulfides are a promising type of anode material for sodium-ion batteries (SIBs) due to their high theoretical capacities and affordability. However, these materials often suffer from issues such as capacity deterioration and poor conductivity during practical application. To address these c...

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Autores principales: Shen, Jinke, Wu, Naiteng, Xie, Wei, Li, Qing, Guo, Donglei, Li, Jin, Liu, Guilong, Liu, Xianming, Mi, Hongyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180235/
https://www.ncbi.nlm.nih.gov/pubmed/37175167
http://dx.doi.org/10.3390/molecules28093757
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author Shen, Jinke
Wu, Naiteng
Xie, Wei
Li, Qing
Guo, Donglei
Li, Jin
Liu, Guilong
Liu, Xianming
Mi, Hongyu
author_facet Shen, Jinke
Wu, Naiteng
Xie, Wei
Li, Qing
Guo, Donglei
Li, Jin
Liu, Guilong
Liu, Xianming
Mi, Hongyu
author_sort Shen, Jinke
collection PubMed
description Fe-based sulfides are a promising type of anode material for sodium-ion batteries (SIBs) due to their high theoretical capacities and affordability. However, these materials often suffer from issues such as capacity deterioration and poor conductivity during practical application. To address these challenges, an N-doped Fe(7)S(8) anode with an N, S co-doped porous carbon framework (PPF-800) was synthesized using a template-assisted method. When serving as an anode for SIBs, it delivers a robust and ultrafast sodium storage performance, with a discharge capacity of 489 mAh g(−1) after 500 cycles at 5 A g(−1) and 371 mAh g(−1) after 1000 cycles at 30 A g(−1) in the ether-based electrolyte. This impressive performance is attributed to the combined influence of heteroatomic doping and adjustable interface engineering. The N, S co-doped carbon framework embedded with Fe(7)S(8) nanoparticles effectively addresses the issues of volumetric expansion, reduces the impact of sodium polysulfides, improves intrinsic conductivity, and stimulates the dominant pseudocapacitive contribution (90.3% at 2 mV s(−1)). Moreover, the formation of a stable solid electrolyte interface (SEI) film by the effect of uniform pore structure in ether-based electrolyte produces a lower transfer resistance during the charge–discharge process, thereby boosting the rate performance of the electrode material. This work expands a facile strategy to optimize the electrochemical performance of other metal sulfides.
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spelling pubmed-101802352023-05-13 Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering Shen, Jinke Wu, Naiteng Xie, Wei Li, Qing Guo, Donglei Li, Jin Liu, Guilong Liu, Xianming Mi, Hongyu Molecules Article Fe-based sulfides are a promising type of anode material for sodium-ion batteries (SIBs) due to their high theoretical capacities and affordability. However, these materials often suffer from issues such as capacity deterioration and poor conductivity during practical application. To address these challenges, an N-doped Fe(7)S(8) anode with an N, S co-doped porous carbon framework (PPF-800) was synthesized using a template-assisted method. When serving as an anode for SIBs, it delivers a robust and ultrafast sodium storage performance, with a discharge capacity of 489 mAh g(−1) after 500 cycles at 5 A g(−1) and 371 mAh g(−1) after 1000 cycles at 30 A g(−1) in the ether-based electrolyte. This impressive performance is attributed to the combined influence of heteroatomic doping and adjustable interface engineering. The N, S co-doped carbon framework embedded with Fe(7)S(8) nanoparticles effectively addresses the issues of volumetric expansion, reduces the impact of sodium polysulfides, improves intrinsic conductivity, and stimulates the dominant pseudocapacitive contribution (90.3% at 2 mV s(−1)). Moreover, the formation of a stable solid electrolyte interface (SEI) film by the effect of uniform pore structure in ether-based electrolyte produces a lower transfer resistance during the charge–discharge process, thereby boosting the rate performance of the electrode material. This work expands a facile strategy to optimize the electrochemical performance of other metal sulfides. MDPI 2023-04-27 /pmc/articles/PMC10180235/ /pubmed/37175167 http://dx.doi.org/10.3390/molecules28093757 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
Shen, Jinke
Wu, Naiteng
Xie, Wei
Li, Qing
Guo, Donglei
Li, Jin
Liu, Guilong
Liu, Xianming
Mi, Hongyu
Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering
title Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering
title_full Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering
title_fullStr Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering
title_full_unstemmed Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering
title_short Realizing Ultrafast and Robust Sodium-Ion Storage of Iron Sulfide Enabled by Heteroatomic Doping and Regulable Interface Engineering
title_sort realizing ultrafast and robust sodium-ion storage of iron sulfide enabled by heteroatomic doping and regulable interface engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180235/
https://www.ncbi.nlm.nih.gov/pubmed/37175167
http://dx.doi.org/10.3390/molecules28093757
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