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Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage

Currently, the construction of amorphous/crystalline (A/C) heterophase has become an advanced strategy to modulate electronic and/or ionic behaviors and promote structural stability due to their concerted advantages. However, their different kinetics limit the synergistic effect. Further, their inte...

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Autores principales: Osman, Sahar, Peng, Chao, Li, Fangkun, Chen, Haoliang, Shen, Jiadong, Zhong, Zeming, Huang, Wenjie, Xue, Dongfeng, Liu, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9798978/
https://www.ncbi.nlm.nih.gov/pubmed/36310102
http://dx.doi.org/10.1002/advs.202205575
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author Osman, Sahar
Peng, Chao
Li, Fangkun
Chen, Haoliang
Shen, Jiadong
Zhong, Zeming
Huang, Wenjie
Xue, Dongfeng
Liu, Jun
author_facet Osman, Sahar
Peng, Chao
Li, Fangkun
Chen, Haoliang
Shen, Jiadong
Zhong, Zeming
Huang, Wenjie
Xue, Dongfeng
Liu, Jun
author_sort Osman, Sahar
collection PubMed
description Currently, the construction of amorphous/crystalline (A/C) heterophase has become an advanced strategy to modulate electronic and/or ionic behaviors and promote structural stability due to their concerted advantages. However, their different kinetics limit the synergistic effect. Further, their interaction functions and underlying mechanisms remain unclear. Here, a unique engineered defect‐rich V(2)O(3) heterophase structure (donated as A/C‐V(2)O(3−) (x) @C‐HMCS) composed of mesoporous oxygen‐deficient amorphous (−) hollow core (A‐V(2)O(3−) (x) /HMC) and lattice‐distorted crystalline shell (C‐V(2)O(3)/S) encapsulated by carbon is rationally designed via a facile approach. Comprehensive density functional theory (DFT) calculations disclose that the lattice distortion enlarges the porous channels for Na(+) diffusion in the crystalline phase, thereby optimizing its kinetics to be compatible with the oxygen‐vacancy‐rich amorphous phase. This significantly reduces the high contrast of the kinetic properties between the crystalline and amorphous phases in A/C‐V(2)O(3−) (x) @C‐HMCS and induces the formation of highly dense A/C interfaces with a strong synergistic effect. As a result, the dense heterointerface effectively optimizes the Na(+) adsorption energy and lowers the diffusion barrier, thus accelerating the overall kinetics of A/C‐V(2)O(3−) (x) @C‐HMCS. In contrast, the perfect heterophase (defects‐free) A/C‐V(2)O(3)@C‐HCS demonstrates sparse A/C interfacial sites with limited synergistic effect and sluggish kinetics. As expected, the A/C‐V(2)O(3−) (x) @C‐HMCS achieves a high rate and ultrastable performance (192 mAh g(−1) over 6000 cycles at 10 A g(−1)) when employed for the first time as a cathode for sodium‐ion batteries (SIBs). This work provides general guidance for realizing dense heterophase cathode design for high‐performance SIBs and beyond.
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spelling pubmed-97989782023-01-05 Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage Osman, Sahar Peng, Chao Li, Fangkun Chen, Haoliang Shen, Jiadong Zhong, Zeming Huang, Wenjie Xue, Dongfeng Liu, Jun Adv Sci (Weinh) Research Articles Currently, the construction of amorphous/crystalline (A/C) heterophase has become an advanced strategy to modulate electronic and/or ionic behaviors and promote structural stability due to their concerted advantages. However, their different kinetics limit the synergistic effect. Further, their interaction functions and underlying mechanisms remain unclear. Here, a unique engineered defect‐rich V(2)O(3) heterophase structure (donated as A/C‐V(2)O(3−) (x) @C‐HMCS) composed of mesoporous oxygen‐deficient amorphous (−) hollow core (A‐V(2)O(3−) (x) /HMC) and lattice‐distorted crystalline shell (C‐V(2)O(3)/S) encapsulated by carbon is rationally designed via a facile approach. Comprehensive density functional theory (DFT) calculations disclose that the lattice distortion enlarges the porous channels for Na(+) diffusion in the crystalline phase, thereby optimizing its kinetics to be compatible with the oxygen‐vacancy‐rich amorphous phase. This significantly reduces the high contrast of the kinetic properties between the crystalline and amorphous phases in A/C‐V(2)O(3−) (x) @C‐HMCS and induces the formation of highly dense A/C interfaces with a strong synergistic effect. As a result, the dense heterointerface effectively optimizes the Na(+) adsorption energy and lowers the diffusion barrier, thus accelerating the overall kinetics of A/C‐V(2)O(3−) (x) @C‐HMCS. In contrast, the perfect heterophase (defects‐free) A/C‐V(2)O(3)@C‐HCS demonstrates sparse A/C interfacial sites with limited synergistic effect and sluggish kinetics. As expected, the A/C‐V(2)O(3−) (x) @C‐HMCS achieves a high rate and ultrastable performance (192 mAh g(−1) over 6000 cycles at 10 A g(−1)) when employed for the first time as a cathode for sodium‐ion batteries (SIBs). This work provides general guidance for realizing dense heterophase cathode design for high‐performance SIBs and beyond. John Wiley and Sons Inc. 2022-10-30 /pmc/articles/PMC9798978/ /pubmed/36310102 http://dx.doi.org/10.1002/advs.202205575 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Osman, Sahar
Peng, Chao
Li, Fangkun
Chen, Haoliang
Shen, Jiadong
Zhong, Zeming
Huang, Wenjie
Xue, Dongfeng
Liu, Jun
Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage
title Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage
title_full Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage
title_fullStr Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage
title_full_unstemmed Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage
title_short Defect‐Induced Dense Amorphous/Crystalline Heterophase Enables High‐Rate and Ultrastable Sodium Storage
title_sort defect‐induced dense amorphous/crystalline heterophase enables high‐rate and ultrastable sodium storage
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9798978/
https://www.ncbi.nlm.nih.gov/pubmed/36310102
http://dx.doi.org/10.1002/advs.202205575
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