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Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy

Evaluating the delamination process in the synthesis of MXenes (2D transition metal carbides and nitrides) is critical for their development and applications. However, the preparation of large defect‐free MXene flakes with high yields is challenging. Here, a power‐focused delamination (PFD) strategy...

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Autores principales: Zhang, Qingxiao, Fan, Runze, Cheng, Weihua, Ji, Peiyi, Sheng, Jie, Liao, Qingliang, Lai, Huirong, Fu, Xueli, Zhang, Chenhao, Li, Hui
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/PMC9534978/
https://www.ncbi.nlm.nih.gov/pubmed/35975421
http://dx.doi.org/10.1002/advs.202202748
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author Zhang, Qingxiao
Fan, Runze
Cheng, Weihua
Ji, Peiyi
Sheng, Jie
Liao, Qingliang
Lai, Huirong
Fu, Xueli
Zhang, Chenhao
Li, Hui
author_facet Zhang, Qingxiao
Fan, Runze
Cheng, Weihua
Ji, Peiyi
Sheng, Jie
Liao, Qingliang
Lai, Huirong
Fu, Xueli
Zhang, Chenhao
Li, Hui
author_sort Zhang, Qingxiao
collection PubMed
description Evaluating the delamination process in the synthesis of MXenes (2D transition metal carbides and nitrides) is critical for their development and applications. However, the preparation of large defect‐free MXene flakes with high yields is challenging. Here, a power‐focused delamination (PFD) strategy is demonstrated that can enhance both the delamination efficiency and yield of large Ti(3)C(2)T (x) MXene nanosheets through repetitive precipitation and vortex shaking processes. Following this protocol, a colloidal concentration of 20.4 mg mL(–1) of the Ti(3)C(2)T (x) MXene can be achieved after five PFD cycles, and the yield of the basal‐plane‐defect‐free Ti(3)C(2)T (x) nanosheets reaches 61.2%, which is 6.4‐fold higher than that obtained using the sonication–exfoliation method. Both nanometer‐thin devices and self‐supporting films exhibit excellent electrical conductivities (≈25 000 and 8260 S cm(‐1) for a 1.8 nm thick monolayer and 11 µm thick film, respectively). Hydrodynamic simulations reveal that the PFD method can efficiently concentrate the shear stress on the surface of the unexfoliated material, leading to the exfoliation of the nanosheets. The PFD‐synthesized large MXene nanosheets exhibit superior electrical conductivities and electromagnetic shielding (shielding effectiveness per unit volume: 35 419 dB cm(2) g(–1)). Therefore, the PFD strategy provides an efficient route for the preparation of high‐performance single‐layer MXene nanosheets with large areas and high yields.
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spelling pubmed-95349782022-10-11 Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy Zhang, Qingxiao Fan, Runze Cheng, Weihua Ji, Peiyi Sheng, Jie Liao, Qingliang Lai, Huirong Fu, Xueli Zhang, Chenhao Li, Hui Adv Sci (Weinh) Research Articles Evaluating the delamination process in the synthesis of MXenes (2D transition metal carbides and nitrides) is critical for their development and applications. However, the preparation of large defect‐free MXene flakes with high yields is challenging. Here, a power‐focused delamination (PFD) strategy is demonstrated that can enhance both the delamination efficiency and yield of large Ti(3)C(2)T (x) MXene nanosheets through repetitive precipitation and vortex shaking processes. Following this protocol, a colloidal concentration of 20.4 mg mL(–1) of the Ti(3)C(2)T (x) MXene can be achieved after five PFD cycles, and the yield of the basal‐plane‐defect‐free Ti(3)C(2)T (x) nanosheets reaches 61.2%, which is 6.4‐fold higher than that obtained using the sonication–exfoliation method. Both nanometer‐thin devices and self‐supporting films exhibit excellent electrical conductivities (≈25 000 and 8260 S cm(‐1) for a 1.8 nm thick monolayer and 11 µm thick film, respectively). Hydrodynamic simulations reveal that the PFD method can efficiently concentrate the shear stress on the surface of the unexfoliated material, leading to the exfoliation of the nanosheets. The PFD‐synthesized large MXene nanosheets exhibit superior electrical conductivities and electromagnetic shielding (shielding effectiveness per unit volume: 35 419 dB cm(2) g(–1)). Therefore, the PFD strategy provides an efficient route for the preparation of high‐performance single‐layer MXene nanosheets with large areas and high yields. John Wiley and Sons Inc. 2022-08-17 /pmc/articles/PMC9534978/ /pubmed/35975421 http://dx.doi.org/10.1002/advs.202202748 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
Zhang, Qingxiao
Fan, Runze
Cheng, Weihua
Ji, Peiyi
Sheng, Jie
Liao, Qingliang
Lai, Huirong
Fu, Xueli
Zhang, Chenhao
Li, Hui
Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy
title Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy
title_full Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy
title_fullStr Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy
title_full_unstemmed Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy
title_short Synthesis of Large‐Area MXenes with High Yields through Power‐Focused Delamination Utilizing Vortex Kinetic Energy
title_sort synthesis of large‐area mxenes with high yields through power‐focused delamination utilizing vortex kinetic energy
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9534978/
https://www.ncbi.nlm.nih.gov/pubmed/35975421
http://dx.doi.org/10.1002/advs.202202748
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