Ultra‐Flyweight Cryogels of MXene/Graphene Oxide for Electromagnetic Interference Shielding

Author:

Ghaffarkhah Ahmadreza1,Hashemi Seyyed Alireza1,Rostami Sara1,Amini Majed1,Ahmadijokani Farhad1,Pournaghshband Isfahani Ali2,Mhatre Sameer E.3,Rojas Orlando J.3,Kamkar Milad4,Wuttke Stefan56,Soroush Masoud2,Arjmand Mohammad1ORCID

Affiliation:

1. Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada

2. Department of Chemical and Biological Engineering Drexel University Philadelphia PA 19104 USA

3. Bioproducts Institute Department of Chemical & Biological Engineering Department of Chemistry and Department of Wood Science The University of British Columbia 2360 East Mall Vancouver BC V6T 1Z3 Canada

4. Department of Chemical Engineering Waterloo Institute for Nanotechnology University of Waterloo 200 University Avenue West Waterloo ON N2L 3G1 Canada

5. Basque Centre for Materials Applications & Nanostructures (BCMaterials) Bld. Martina Casiano, 3rd. Floor UPV/EHU Science Park Barrio Sarriena s/n Leioa 48940 Spain

6. IKERBASQUE Basque Foundation for Science Bilbao 48013 Spain

Abstract

AbstractMXene and graphene cryogels have demonstrated excellent electromagnetic interference (EMI) shielding effectiveness due to their exceptional electrical conductivity, low density, and ability to dissipate electromagnetic waves through numerous internal interfaces. However, their synthesis demands costly reduction techniques and/or pre‐processing methods such as freeze‐casting to achieve high EMI shielding and mechanical performance. Furthermore, limited research has been conducted on optimizing the cryogel microstructures and porosity to enhance EMI shielding effectiveness while reducing materials consumption. Herein, a novel approach to produce ultra‐lightweight cryogels composed of Ti3C2Tx/graphene oxide (GO) displaying multiscale porosity is presented to enable high‐performance EMI shielding. This method uses controllable templating through the interfacial assembly of filamentous‐structured liquids that are readily converted into EMI cryogels. The obtained ultra‐flyweight cryogels (3–7 mg cm−3) exhibit outstanding specific EMI shielding effectiveness (33 000–50 000 dB cm2 g−1) while eliminating the need for chemical or thermal reduction. Furthermore, exceptional shielding is achieved when the Ti3C2Tx/GO cryogels are used as the backbone of conductive epoxy nanocomposites, yielding EMI shielding effectiveness of 31.7–51.4 dB at a low filler loading (0.3–0.7 wt%). Overall, a one‐of‐a‐kind EMI shielding system is introduced that is readily processed while affording scalability and performance.

Funder

Natural Sciences and Engineering Research Council of Canada

Canada Excellence Research Chairs, Government of Canada

Canada Foundation for Innovation

National Science Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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