Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries

Sodium (Na) ion batteries (SIB) hold great importance in energy storage due to their potential to offer a sustainable and cost-effective alternative to traditional lithium-ion batteries. Na is abundantly available and less expensive than lithium, making it an attractive option for large-scale energy...

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Published in:PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Main Authors: Yeoh, K. H.; Chang, Y. H. R.; Chew, K. -H.; Ong, D. S.; Dee, C. F.; Goh, B. T.; Chang, E. Y.; Yu, H. W.
Format: Article
Language:English
Published: ROYAL SOC CHEMISTRY 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001316130400001
author Yeoh
K. H.; Chang
Y. H. R.; Chew
K. -H.; Ong
D. S.; Dee
C. F.; Goh
B. T.; Chang
E. Y.; Yu, H. W.
spellingShingle Yeoh
K. H.; Chang
Y. H. R.; Chew
K. -H.; Ong
D. S.; Dee
C. F.; Goh
B. T.; Chang
E. Y.; Yu, H. W.
Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
Chemistry; Physics
author_facet Yeoh
K. H.; Chang
Y. H. R.; Chew
K. -H.; Ong
D. S.; Dee
C. F.; Goh
B. T.; Chang
E. Y.; Yu, H. W.
author_sort Yeoh
spelling Yeoh, K. H.; Chang, Y. H. R.; Chew, K. -H.; Ong, D. S.; Dee, C. F.; Goh, B. T.; Chang, E. Y.; Yu, H. W.
Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
PHYSICAL CHEMISTRY CHEMICAL PHYSICS
English
Article
Sodium (Na) ion batteries (SIB) hold great importance in energy storage due to their potential to offer a sustainable and cost-effective alternative to traditional lithium-ion batteries. Na is abundantly available and less expensive than lithium, making it an attractive option for large-scale energy storage applications. In the present work, we have predicted a series of 2D transition metal (TM) Si-chalcogenides (TMSiCs), TM2X2Si (TM = Ta, Nb and X = S, Se), which exhibit metallic characteristics. All these materials are dynamically stable, but only Ta2S2Si, Ta2Se2Si and Nb2Se2Si are thermally stable even at an elevated temperature of 400 K. Through first-principles calculations, we show that Ta2S2Si, Ta2Se2Si and Nb2Se2Si are promising anode materials for SIB. These materials have a low Na migration barrier in the range of 0.13 to 0.17 eV, which could enhance the cycling performance of the SIB. The calculated average open circuit voltage (OCV) is small, i.e. 0.48, 0.4 and 0.47 V for Ta2S2Si, Ta2Se2Si and Nb2Se2Si, respectively, which suggests the possibility of higher output voltage and larger energy density of the battery. The maximum Na ion capacities for Ta2S2Si, Ta2Se2Si and Nb2Se2Si are calculated to be 206.6, 171.3 and 252.4 mA h g-1, respectively. Our results could provide fundamental insights into TM2X2Si for energy storage applications. Using the first-principles method, the electronic, mechanical, and electrochemical properties of 2D Ta2Se2Si, Ta2S2Si, and Nb2Se2Si as anode materials for sodium-ion batteries are evaluated.
ROYAL SOC CHEMISTRY
1463-9076
1463-9084
2024
26
38
10.1039/d4cp01843e
Chemistry; Physics

WOS:001316130400001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001316130400001
title Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
title_short Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
title_full Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
title_fullStr Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
title_full_unstemmed Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
title_sort Transition metal Si-chalcogenides: a new two-dimensional anode material for Na-ion batteries
container_title PHYSICAL CHEMISTRY CHEMICAL PHYSICS
language English
format Article
description Sodium (Na) ion batteries (SIB) hold great importance in energy storage due to their potential to offer a sustainable and cost-effective alternative to traditional lithium-ion batteries. Na is abundantly available and less expensive than lithium, making it an attractive option for large-scale energy storage applications. In the present work, we have predicted a series of 2D transition metal (TM) Si-chalcogenides (TMSiCs), TM2X2Si (TM = Ta, Nb and X = S, Se), which exhibit metallic characteristics. All these materials are dynamically stable, but only Ta2S2Si, Ta2Se2Si and Nb2Se2Si are thermally stable even at an elevated temperature of 400 K. Through first-principles calculations, we show that Ta2S2Si, Ta2Se2Si and Nb2Se2Si are promising anode materials for SIB. These materials have a low Na migration barrier in the range of 0.13 to 0.17 eV, which could enhance the cycling performance of the SIB. The calculated average open circuit voltage (OCV) is small, i.e. 0.48, 0.4 and 0.47 V for Ta2S2Si, Ta2Se2Si and Nb2Se2Si, respectively, which suggests the possibility of higher output voltage and larger energy density of the battery. The maximum Na ion capacities for Ta2S2Si, Ta2Se2Si and Nb2Se2Si are calculated to be 206.6, 171.3 and 252.4 mA h g-1, respectively. Our results could provide fundamental insights into TM2X2Si for energy storage applications. Using the first-principles method, the electronic, mechanical, and electrochemical properties of 2D Ta2Se2Si, Ta2S2Si, and Nb2Se2Si as anode materials for sodium-ion batteries are evaluated.
publisher ROYAL SOC CHEMISTRY
issn 1463-9076
1463-9084
publishDate 2024
container_volume 26
container_issue 38
doi_str_mv 10.1039/d4cp01843e
topic Chemistry; Physics
topic_facet Chemistry; Physics
accesstype
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url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001316130400001
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