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一种用于电磁屏蔽的超强度和抗菌银纳米线/定向纤维素支架复合膜。

An Ultrastrong and Antibacterial Silver Nanowire/Aligned Cellulose Scaffold Composite Film for Electromagnetic Interference Shielding.

机构信息

Shaanxi Provincal Key Laboratory of Papermaking Technology and Specialty Paper Development, Key Laboratory of Paper-Based Functional Materials, China National Light Industry, National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi University of Science & Technology, Xi'an 710021, China.

Laboratory for Advanced Interfacial Materials and Devices, Research Center for Smart Wearable Technology, Institute of Textiles and Clothing, The Hong Kong Polytechnic University, Hong Kong SAR 999077, China.

出版信息

ACS Appl Mater Interfaces. 2022 Mar 30;14(12):14520-14531. doi: 10.1021/acsami.1c23515. Epub 2022 Mar 20.

Abstract

Constructing multifunctional electromagnetic interference (EMI) shielding films with superior mechanical strength has sparked a lot of interest in the fields of wearable electronics. In this work, the conductive silver nanowires (AgNWs) were synthesized and impregnated into the highly aligned cellulose scaffold (CS) fabricated by wood delignification followed by hot-pressing and polydimethylsiloxane (PDMS) dipping processes to obtain the outstanding EMI shielding cellulosic film (d-AgNWs@CS-PDMS). The consecutively conductive pathway of AgNWs was constructed in the microchannels of the CS as a result of the hydrogen bonding between AgNWs and cellulose fibers, which is conducive to the reflection of incident EM waves. The higher degree of nanofiber alignment and the compact conductive network were improved by densification upon hot pressing, which endows the composite film with striking mechanical properties (maximum tensile strength of 511.8 MPa) and superb EMI shielding performance (shielding effectiveness value of 46 dB with a filler content of 21.6 wt %) at the X band (8.2-12.4 GHz). Moreover, the existence of an intensive AgNWs network and the introduction of the PDMS layer improve the hydrophobicity and antibacterial activity of the composite film, avoiding serious health concerns in the long-term wearing. These results demonstrate that the obtained d-AgNWs@CS-PDMS composite film has high potential as an EMI shielding material used for wearable devices.

摘要

构建具有优异机械强度的多功能电磁干扰 (EMI) 屏蔽膜在可穿戴电子领域引起了广泛关注。在这项工作中,通过木材脱木质化、热压和聚二甲基硅氧烷 (PDMS) 浸渍工艺制备高度取向的纤维素支架 (CS),并将导电银纳米线 (AgNWs) 注入其中,得到了出色的 EMI 屏蔽纤维素膜 (d-AgNWs@CS-PDMS)。由于 AgNWs 与纤维素纤维之间的氢键作用,AgNWs 在 CS 的微通道中形成连续的导电途径,有利于反射入射的电磁波。通过热压进一步致密化,提高了纳米纤维的取向度和致密的导电网络,使复合膜具有出色的机械性能(最大拉伸强度为 511.8 MPa)和优异的 EMI 屏蔽性能(在 X 波段(8.2-12.4 GHz),填充含量为 21.6 wt%时,屏蔽效能值为 46 dB)。此外,密集的 AgNWs 网络的存在和 PDMS 层的引入提高了复合膜的疏水性和抗菌活性,避免了长期佩戴带来的严重健康问题。这些结果表明,所获得的 d-AgNWs@CS-PDMS 复合膜具有作为用于可穿戴设备的 EMI 屏蔽材料的高潜力。

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