4.7 Article

Lightweight, Flexible Cellulose-Derived Carbon Aerogel@Reduced Graphene Oxide/PDMS Composites with Outstanding EMI Shielding Performances and Excellent Thermal Conductivities

Journal

NANO-MICRO LETTERS
Volume 13, Issue 1, Pages -

Publisher

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-021-00624-4

Keywords

Polydimethylsiloxane; Electromagnetic interference shielding; Cellulose carbon aerogel; Reduced graphene oxide

Funding

  1. Foundation of National Natural Science Foundation of China [51773169, 51973173]
  2. Natural Science Basic Research Plan for Distinguished Young Scholars in Shaanxi Province of China [2019JC11]
  3. Natural Science Basic Research Plan in Shaanxi Province of China [2020JQ-164]
  4. Innovation Foundation for Doctor Dissertation of Northwestern Polytechnical University [CX202055]
  5. Polymer Electromagnetic Functional Materials Innovation Team of Shaanxi Sanqin Scholars

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By dissolving cotton in a NaOH/urea solution, cellulose aerogels were obtained and further processed to prepare cellulose carbon aerogels@reduced graphene oxide aerogels. The resulting composites showed excellent EMI shielding effectiveness, thermal stability, and thermal conductivity, making them promising for lightweight and flexible EMI shielding applications.
In order to ensure the operational reliability and information security of sophisticated electronic components and to protect human health, efficient electromagnetic interference (EMI) shielding materials are required to attenuate electromagnetic wave energy. In this work, the cellulose solution is obtained by dissolving cotton through hydrogen bond driving self-assembly using sodium hydroxide (NaOH)/urea solution, and cellulose aerogels (CA) are prepared by gelation and freeze-drying. Then, the cellulose carbon aerogel@reduced graphene oxide aerogels (CCA@rGO) are prepared by vacuum impregnation, freeze-drying followed by thermal annealing, and finally, the CCA@rGO/polydimethylsiloxane (PDMS) EMI shielding composites are prepared by backfilling with PDMS. Owing to skin-core structure of CCA@rGO, the complete three-dimensional (3D) double-layer conductive network can be successfully constructed. When the loading of CCA@rGO is 3.05 wt%, CCA@rGO/PDMS EMI shielding composites have an excellent EMI shielding effectiveness (EMI SE) of 51 dB, which is 3.9 times higher than that of the co-blended CCA/rGO/PDMS EMI shielding composites (13 dB) with the same loading of fillers. At this time, the CCA@rGO/PDMS EMI shielding composites have excellent thermal stability (T-HRI of 178.3 degrees C) and good thermal conductivity coefficient (lambda of 0.65 W m(-1) K-1). Excellent comprehensive performance makes CCA@rGO/PDMS EMI shielding composites great prospect for applications in lightweight, flexible EMI shielding composites.

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