4.7 Article

Water-Induced Structural Rearrangements on the Nanoscale in Ultrathin Nanocellulose Films

Journal

MACROMOLECULES
Volume 52, Issue 12, Pages 4721-4728

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.macromol.9b00531

Keywords

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Funding

  1. DESY strategic fund (DSF) Investigation of processes for spraying and spray-coating of hybrid cellulose-based nanostructures
  2. Knut and Alice Wallenberg Foundation through Wallenberg Wood Science Center at KTH
  3. BMBF project [05K16WOA-FlexiProb]
  4. Marie Sklodowska-Curie Action, International Career Grant through the European Commission
  5. Swedish Research Council (VR) [INCA-2014-6426]
  6. VR neutron project grant (BIFROST) [2016-06955]
  7. Carl Tryggers Foundation for Scientific Research [CTS-16:324]

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Many nanoscale biopolymer building blocks with defect free molecular structure and exceptional mechanical properties have the potential to surpass the performance of existing fossil-based materials with respect to barrier properties, load-bearing substrates for advanced functionalities, as well as light-weight construction. Comprehension and control of performance variations of macroscopic biopolymer materials caused by humidity-driven structural changes at the nanoscale are imperative and challenging. A long-lasting challenge is the interaction with water molecules causing reversible changes in the intrinsic molecular structures that adversely affects the macroscale performance. Using in situ advanced X-ray and neutron scattering techniques, we reveal the structural rearrangements at the nanoscale in ultrathin nanocellulose films with humidity variations. These reversible rearrangements are then correlated with wettability that can be tuned. The results and methodology have general implications not only on the performance of cellulose based materials but also for hierarchical materials fabricated with other organic and inorganic moisture-sensitive building blocks.

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