Flash-Induced High-Throughput Porous Graphene via Synergistic Photo-Effects for Electromagnetic Interference Shielding

  • Jin Soo Lee
  • , Jeong Wook Kim
  • , Jae Hee Lee
  • , Yong Koo Son
  • , Young Bin Kim
  • , Kyoohee Woo
  • , Chanhee Lee
  • , Il Doo Kim
  • , Jae Young Seok
  • , Jong Won Yu
  • , Jung Hwan Park
  • , Keon Jae Lee

Research output: Contribution to journalArticlepeer-review

33 Scopus citations

Abstract

Abstract: Porous 2D materials with high conductivity and large surface area have been proposed for potential electromagnetic interference (EMI) shielding materials in future mobility and wearable applications to prevent signal noise, transmission inaccuracy, system malfunction, and health hazards. Here, we report on the synthesis of lightweight and flexible flash-induced porous graphene (FPG) with excellent EMI shielding performance. The broad spectrum of pulsed flashlight induces photo-chemical and photo-thermal reactions in polyimide films, forming 5 × 10 cm2-size porous graphene with a hollow pillar structure in a few milliseconds. The resulting material demonstrated low density (0.0354 g cm−3) and outstanding absolute EMI shielding effectiveness of 1.12 × 105 dB cm2 g−1. The FPG was characterized via thorough material analyses, and its mechanical durability and flexibility were confirmed by a bending cycle test. Finally, the FPG was utilized in drone and wearable applications, showing effective EMI shielding performance for internal/external EMI in a drone radar system and reducing the specific absorption rate in the human body.[MediaObject not available: see fulltext.].

Original languageEnglish
Article number191
JournalNano-Micro Letters
Volume15
Issue number1
DOIs
StatePublished - Dec 2023

Keywords

  • Electromagnetic interference shielding
  • Flash lamp
  • High-throughput
  • Photo-pyrolysis
  • Porous graphene

Fingerprint

Dive into the research topics of 'Flash-Induced High-Throughput Porous Graphene via Synergistic Photo-Effects for Electromagnetic Interference Shielding'. Together they form a unique fingerprint.

Cite this