Cobalt‐Based Metallic Glass Microfibers for Flexible Electromagnetic Shielding and Soft Magnetic Properties

Author:

Sharifikolouei Elham1ORCID,Kozieł Tomasz2,Bała Piotr23,Żywczak Antoni3,Gondek Łukasz4,Rashidi Reza1,Fracasso Michela15,Gerbaldo Roberto15,Ghigo Gianluca15,Gozzelino Laura15,Torsello Daniele15

Affiliation:

1. Institute of Materials Physics and Engineering Department of Applied Science and Technology Politecnico di Torino (POLITO) Torino Italy

2. Faculty of Metals Engineering and Industrial Computer Science AGH University of Krakow Kraków Poland

3. Academic Centre for Materials and Nanotechnology AGH University of Krakow Kraków Poland

4. Faculty of Physics and Applied Computer Science AGH University of Krakow Kraków Poland

5. Istituto Nazionale di Fisica Nucleare Sezione di Torino Torino Italy

Abstract

AbstractThin and flexible materials that can provide efficient electromagnetic interference (EMI) shielding are urgently needed, particularly those that can be rapidly processed and withstand harsh environments. Cobalt‐based metallic glasses stand out as prime candidates due to their excellent soft magnetic properties, satisfactory shielding features, and mechanical properties. Herein, a recently developed technique is used to fabricate metallic glass microfibers from Co66Fe4Mo2Si16B12 alloy. The produced microfibers are characterized for their size and uniformity by scanning electron microscopy and their amorphous structure is confirmed by X‐ray diffraction (XRD) and differential scanning calorimetry (DSC). The cobalt‐based metallic glass microfibers show an EMI shielding factor that reaches five in the static regime and obtains an up to 25‐fold increase of the attenuation constant in the Ku frequency band. This performance originates from the combination of soft magnetic properties and excellent electrical conductivity. In addition, the flexible microfibers exhibit excellent hardness and elasticity making them suitable for EMI shielding of complex geometries. Their hardness and elastic modulus are measured by nanoindentation to be 11.31 ± 0.60 GPa, and 110.54 ± 11.24 GPa, respectively.

Funder

European Commission

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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