4.8 Article

Reversible Crumpling of 2D Titanium Carbide (MXene) Nanocoatings for Stretchable Electromagnetic Shielding and Wearable Wireless Communication

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 30, Issue 5, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201907451

Keywords

stretchable conductor; stretchable electromagnetic shielding; Ti3C2Tx MXene; wearable wireless communication; wrinkled and crumpled textures

Funding

  1. Faculty Research Committee (FRC) Start-Up Grant of National University of Singapore [R-279-000-515-133]
  2. Ministry of Education (MOE) Academic Research Fund (AcRF) [R-279-000-538-114, R-279-000-532-114, R-279-000-551-114, R-397-000-227-112]
  3. AME Young Investigator Research Grant (A*STAR Grant) [A1884c0017]
  4. Singapore-MIT Alliance for Research and Technology (SMART) Ignition Grant [R-279-000-572-592]
  5. National Research Foundation Singapore [NRFF2017-07]

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In the emerging Internet of Things, stretchable antennas can facilitate wireless communication between wearable and mobile electronic devices around the body. The proliferation of wireless devices transmitting near the human body also raises interference and safety concerns that demand stretchable materials capable of shielding electromagnetic interference (EMI). Here, an ultrastretchable conductor is fabricated by depositing a crumple-textured coating composed of 2D Ti3C2Tx nanosheets (MXene) and single-walled carbon nanotubes (SWNTs) onto latex, which can be fashioned into high-performance wearable antennas and EMI shields. The resulting MXene-SWNT (S-MXene)/latex devices are able to sustain up to an 800% areal strain and exhibit strain-insensitive resistance profiles during a 500-cycle fatigue test. A single layer of stretchable S-MXene conductors demonstrate a strain-invariant EMI shielding performance of approximate to 30 dB up to 800% areal strain, and the shielding performance is further improved to approximate to 47 and approximate to 52 dB by stacking 5 and 10 layers of S-MXene conductors, respectively. Additionally, a stretchable S-MXene dipole antenna is fabricated, which can be uniaxially stretched to 150% with unaffected reflected power <0.1%. By integrating S-MXene EMI shields with stretchable S-MXene antennas, a wearable wireless system is finally demonstrated that provides mechanically stable wireless transmission while attenuating EM absorption by the human body.

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