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Published February 22, 2022 | Supplemental Material
Journal Article Open

3D Porous Graphene Films with Large‐Area In‐Plane Exterior Skins

Abstract

Construction of macroscopic 3D architectures of graphene is crucial to harness the advantageous properties of planar 2D graphene and to enable integration to many conventional and novel applications. Ideally, the 3D structure of graphene should be free of defects, covalently interconnected, and can be produced at large-scale. Among various assembly techniques, fabrication using chemical vapor deposition (CVD) enables the production of high-quality graphene where selection of template is the key that determines its consequent crystalline quality and structural morphology. Herein, a new method is presented to synthesize high-quality porous graphene film by incorporating an in situ reduction–oxidation cycling treatment to generate micrometer-sized pores on commercial Ni foil using an all-CVD process route. Owing to the unique morphological features of the modified Ni template, the graphene film exhibits a holey surface with large-area exterior skin coverage of >94% and many interconnected ligaments within its porous interior. This extraordinary configuration gives rise to superior in-plane electrical conductivity despite its low density. In comparison to state-of-the-art materials for electromagnetic interference shielding, this porous graphene film is among the best performing materials with a specific shielding effectiveness of >550 dB cm³ g⁻¹ and absolute effectiveness of >220 000 dB cm² g⁻¹.

Additional Information

© 2022 Wiley-VCH. Issue Online: 23 February 2022; Version of Record online: 17 January 2022; Manuscript revised: 24 November 2021; Manuscript received: 09 October 2021. R.Y.T. and H.L. contributed equally to this work. R.Y.T. gratefully acknowledges the financial support under the College of Engineering (CoE) International Postdoctoral Fellowship (IPF), which is jointly provided by the Ministry of Education, Singapore and Nanyang Technological University, Singapore. Data Availability Statement. The data that support the findings of this study are available from the corresponding author upon reasonable request. The authors declare no conflict of interest.

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Created:
August 22, 2023
Modified:
October 23, 2023