4.8 Article

Multifunctional Superelastic Cellulose Nanofibrils Aerogel by Dual Ice-Templating Assembly

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 31, Issue 46, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202106269

Keywords

cellulose nanofibrils; ice templating; self-cleaning; superelastic; superhydrophobic; thermal insulation

Funding

  1. Canada Research Chairs program [231928]
  2. Natural Sciences and Engineering Research Council of Canada (NSERC) [RGPIN-2018-06818]
  3. Canada Foundation for Innovation - John R. Evans Leaders Fund (CFI-JELF) [37517]
  4. Department of National Defence through its Innovation for Defence Excellence and Security (IDEaS) program

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The dual ice-templating assembly (DITA) strategy can control the assembly of cellulose nanofibrils (CNF) into elastic aerogels with interconnected sub-micron fibers, exhibiting excellent superelastic behavior and multifunctional properties.
A superelastic aerogel with fast shape recovery performance from large compressive strain is highly desired for numerous applications such as thermal insulation in clothing, high-sensitive sensors, and oil contaminant removal. Fabrication of superelastic cellulose nanofibrils (CNF) aerogels is challenging as the CNF can assemble into non-elastic sheet-like cell walls. Here, a dual ice-templating assembly (DITA) strategy is proposed that can control the assembly of CNF into sub-micrometer fibers by extremely low temperature freezing (-196 degrees C), which can further assemble into an elastic aerogel with interconnected sub-micron fibers by freezer freezing (-20 degrees C) and freeze drying. The CNF aerogel from the DITA process demonstrates isotropic superelastic behavior that can recover from over 80% compressive strain along both longitudinal and cross-sectional directions, even in an extremely cold liquid nitrogen environment. The elastic CNF aerogel can be easily modified by chemical vapor deposition of organosilane, demonstrating superhydrophobicity (164 degrees water contact angle), high liquid absorption (489 g g(-1) of chloroform absorption capacity), self-cleaning, thermal insulating (0.023 W (mK)(-1)), and infrared shielding properties. This new DITA strategy provides a facile design of superelastic aerogels from bio-based nanomaterials, and the derived high performance multifunctional elastic aerogel is expected to be useful for a wide-range of applications.

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