Moisture-responsive films of cellulose stearoyl esters showing reversible shape transitions

2015 | journal article. A publication with affiliation to the University of Göttingen.

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​Moisture-responsive films of cellulose stearoyl esters showing reversible shape transitions​
Zhang, K. ; Geissler, A.; Standhardt, M.; Mehlhase, S.; Gallei, M.; Chen, L. & Thiele, C. M.​ (2015) 
Scientific Reports5(1) art. 11011​.​ DOI: https://doi.org/10.1038/srep11011 

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Authors
Zhang, Kai ; Geissler, Andreas; Standhardt, Michaela; Mehlhase, Sabrina; Gallei, Markus; Chen, Longquan; Thiele, Christina Marie
Abstract
Moisture-responsive materials are gaining greater interest for their potentially wide applications and the readily access to moisture. In this study, we show the fabrication of moisture-responsive, self-standing films using sustainable cellulose as starting material. Cellulose was modified by stearoyl moieties at first, leading to cellulose stearoyl esters (CSEs) with diverse degrees of substitution (DSs). The films of CSE with a low DS of 0.3 (CSE0.3) exhibited moisture-responsive properties, while CSEs with higher DSs of 1.3 or 3 (CSE1.3 and CSE3) not. The CSE0.3 films could reversibly fold and unfold as rhythmical bending motions within a local moisture gradient due to the ab -and desorption of water molecules at the film surface. By spray-coating CSE3 nanoparticles (NPs) onto CSE0.3 films, moisture-responsive films with non-wetting surface were obtained, which can perform quick reversible bending movements and continuous shape transition on water. Furthermore, bilayer films containing one layer of CSE0.3 at one side and one layer of CSE3 at the other side exhibited combined responsiveness to moisture and temperature. By varying the thickness of CSE0.3 films, the minimal bending extent can be adjusted due to altered mechanical resistances, which allows a bending movement preferentially beginning with the thinner side.
Issue Date
2015
Journal
Scientific Reports 
Organization
Fakultät für Forstwissenschaften und Waldökologie ; Burckhardt-Institut ; Abteilung Holztechnologie und Holzwerkstoffe ; Juniorprofessur Holztechnologie und Holzchemie 
ISSN
2045-2322
Language
English
Sponsor
Hessian excellence initiative LOEWE - research cluster SOFT CONTROL

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