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Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding
Multifunctional electromagnetic interference (EMI) shielding materials would solve electromagnetic radiation and pollution problems from electronic devices. Herein, the directional freeze-drying technology is utilized to prepare the aramid nanofiber/polyvinyl alcohol aerogel with a directionally por...
Autores principales: | , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
AAAS
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8832284/ https://www.ncbi.nlm.nih.gov/pubmed/35211678 http://dx.doi.org/10.34133/2022/9780290 |
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author | Zhang, Yali Ma, Zhonglei Ruan, Kunpeng Gu, Junwei |
author_facet | Zhang, Yali Ma, Zhonglei Ruan, Kunpeng Gu, Junwei |
author_sort | Zhang, Yali |
collection | PubMed |
description | Multifunctional electromagnetic interference (EMI) shielding materials would solve electromagnetic radiation and pollution problems from electronic devices. Herein, the directional freeze-drying technology is utilized to prepare the aramid nanofiber/polyvinyl alcohol aerogel with a directionally porous structure (D-ANF/PVA), and the Ti(3)C(2)T(x) dispersion is fully immersed into the D-ANF/PVA aerogel via ultrasonication and vacuum-assisted impregnation. Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite films with directionally ordered structure (D-Ti(3)C(2)T(x)/(ANF/PVA)) are then prepared by freeze-drying and hot pressing. Constructing a directionally porous structure enables the highly conductive Ti(3)C(2)T(x) nanosheets to be wrapped on the directionally porous D-ANF/PVA framework in order arrangement and overlapped with each other. And the hot pressing process effectively reduces the layer spacing between the stacked wavy D-ANF/PVA, to form a large number of Ti(3)C(2)T(x)-Ti(3)C(2)T(x) continuous conductive paths, which significantly improves the conductivity of the D-Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite film. When the amount of Ti(3)C(2)T(x) is 80 wt%, the EMI shielding effectiveness (EMI SE) and specific SE (SSE/t) of D-Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite film achieve 70 dB and 13790 dB·cm(2)·g(−1) (thickness and density of 120 μm and 0.423 g·cm(−3)), far superior to random-structured Ti(3)C(2)T(x)/(ANF/PVA) (R-Ti(3)C(2)T(x)/(ANF/PVA)) composite film (46 dB and 9062 dB·cm(2)·g(−1), respectively) via blending-freeze-drying followed by hot pressing technology. Meanwhile, the D-Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite film possesses excellent flexibility and foldability. |
format | Online Article Text |
id | pubmed-8832284 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | AAAS |
record_format | MEDLINE/PubMed |
spelling | pubmed-88322842022-02-23 Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding Zhang, Yali Ma, Zhonglei Ruan, Kunpeng Gu, Junwei Research (Wash D C) Research Article Multifunctional electromagnetic interference (EMI) shielding materials would solve electromagnetic radiation and pollution problems from electronic devices. Herein, the directional freeze-drying technology is utilized to prepare the aramid nanofiber/polyvinyl alcohol aerogel with a directionally porous structure (D-ANF/PVA), and the Ti(3)C(2)T(x) dispersion is fully immersed into the D-ANF/PVA aerogel via ultrasonication and vacuum-assisted impregnation. Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite films with directionally ordered structure (D-Ti(3)C(2)T(x)/(ANF/PVA)) are then prepared by freeze-drying and hot pressing. Constructing a directionally porous structure enables the highly conductive Ti(3)C(2)T(x) nanosheets to be wrapped on the directionally porous D-ANF/PVA framework in order arrangement and overlapped with each other. And the hot pressing process effectively reduces the layer spacing between the stacked wavy D-ANF/PVA, to form a large number of Ti(3)C(2)T(x)-Ti(3)C(2)T(x) continuous conductive paths, which significantly improves the conductivity of the D-Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite film. When the amount of Ti(3)C(2)T(x) is 80 wt%, the EMI shielding effectiveness (EMI SE) and specific SE (SSE/t) of D-Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite film achieve 70 dB and 13790 dB·cm(2)·g(−1) (thickness and density of 120 μm and 0.423 g·cm(−3)), far superior to random-structured Ti(3)C(2)T(x)/(ANF/PVA) (R-Ti(3)C(2)T(x)/(ANF/PVA)) composite film (46 dB and 9062 dB·cm(2)·g(−1), respectively) via blending-freeze-drying followed by hot pressing technology. Meanwhile, the D-Ti(3)C(2)T(x)/(ANF/PVA) EMI shielding composite film possesses excellent flexibility and foldability. AAAS 2022-02-02 /pmc/articles/PMC8832284/ /pubmed/35211678 http://dx.doi.org/10.34133/2022/9780290 Text en Copyright © 2022 Yali Zhang et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0). |
spellingShingle | Research Article Zhang, Yali Ma, Zhonglei Ruan, Kunpeng Gu, Junwei Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding |
title | Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding |
title_full | Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding |
title_fullStr | Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding |
title_full_unstemmed | Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding |
title_short | Flexible Ti(3)C(2)T(x)/(Aramid Nanofiber/PVA) Composite Films for Superior Electromagnetic Interference Shielding |
title_sort | flexible ti(3)c(2)t(x)/(aramid nanofiber/pva) composite films for superior electromagnetic interference shielding |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8832284/ https://www.ncbi.nlm.nih.gov/pubmed/35211678 http://dx.doi.org/10.34133/2022/9780290 |
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