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Absorption Dominated Directional Electromagnetic Interference Shielding through Asymmetry in a Multilayered Construct with an Exceptionally High Green Index.

Kumari SushmitaDebabrata GhoshSagar NilawarSuryasarathi Bose
Published in: ACS applied materials & interfaces (2022)
Fabricating green electromagnetic interference (EMI) shields is the need of the hour because strong secondary reflections in the vicinity of the shield adversely affect the environment and the reliability of the neighboring devices. To this end, the present work aims to maximize the absorption-based EMI shielding through a multilayered construct comprising a porous structure (pore size less than λ/5), a highly conducting entity, and a layer to match the impedance. The elements of this construct were positioned so that the incoming electromagnetic (EM) radiation interacts with the other layers of the construct before the conducting entity. This positioning of the layers in the construct offers a high green shielding index ( g s ) and low reflection coefficient ( R ∼ 0.1) with an exceptionally high percent absorption (up to 99%). Polyurethane (PU) foams were fabricated using the salt-leaching technique and strategically positioned with carbon nanotube (CNT) papers and polycarbonate (PC)-based films to obtain symmetric and asymmetric constructs. These structures were then employed to gain mechanistic insight into the directional dependency of shielding performance, g s , and heat dissipation ability. Interestingly, maximum total shielding effectiveness (SE T ) of -52 dB (88% absorption @8.2 GHz) and specific shielding effectiveness/thickness (SSE t ) of -373 dB/cm 2 g were achieved for a symmetric construct whereas, for the asymmetric construct, the SE T and SSE t were -37 dB and -280 dB/cm 2 g, respectively, with an exceptionally high g s of 8.6, the highest reported so far. The asymmetricity in the construct led to directional dependence of the absorption component (% SE A , shielding effectiveness due to absorption) and heat dissipation, primarily governed by the electrical and thermal conductivity gradient, respectively. This study opens new avenues in this field and reports constructs with an exceptionally high green index.
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