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Cross-linked cellulose nano-sponges: a small angle neutron scattering (SANS) study
- Source :
- Cellulose
- Publication Year :
- 2019
- Publisher :
- Springer Science and Business Media LLC, 2019.
-
Abstract
- Cellulose nano-sponges (CNS), obtained by cross-linking TEMPO oxidized and ultra-sonicated cellulose nano-fibers (TOUS-CNFs) with branched polyethyleneimine (bPEI), underwent here a systematic small angle neutron scattering investigation, by varying the amount of cross-linker and the water content. The aim was to provide experimental evidence of nano-porosity in the TOUS-CNF network of these nano-sponges (CNSs) by investigating the water nano-confinement geometries in the adsorbent material. Moreover, we also verified how the breaking/reformation of specific intermolecular hydrogen bond interactions between water and the chemical groups present in the architecture of the CNSs could contribute to regulate the water adsorption process observed at macroscopic level. The analysis of the experimental data, performed in terms of the correlation length model, allowed us to extract the short-range correlation length ξ, interpreted as a very first indirect estimation of the effective nano-dimension of the cavities produced by the cross-linking of the reticulated cellulose nano-fibers. From the model, power-law (n) and Lorentzian (m) exponents have been also obtained, associated with the density of TOUS-CNFs at high (larger than hundreds of A) and low (~ 10–100 A) spatial scales, respectively. These parameters were all sensitive to the structural variations induced by the progressive uptake of water on the bPEI/TOUS-CNF sponges with different bPEI:TOUS-CNF (w/w) ratios. Finally, we investigated the effect of the addition of citric acid in the CNS formulation, confirming its role in increasing cross-linking density and sponge rigidity. The obtained results appear crucial in order to rationalize the design of these sponges and to track the changes in the ability of the final products as efficient nano-confinement systems for water.
- Subjects :
- Cellulose nano-fibers TEMPO oxidation SANS technique Nano-porous materials Cellulose nano-sponges
Materials science
Polymers and Plastics
biology
Hydrogen bond
Intermolecular force
technology, industry, and agriculture
Cellulose nano-fibers
Cellulose nano-sponges
Nano-porous materials
SANS technique
TEMPO oxidation
02 engineering and technology
010402 general chemistry
021001 nanoscience & nanotechnology
biology.organism_classification
01 natural sciences
Small-angle neutron scattering
0104 chemical sciences
chemistry.chemical_compound
Sponge
Adsorption
chemistry
Chemical engineering
Nano
Cellulose
0210 nano-technology
Water content
Subjects
Details
- ISBN :
- 978-3-527-68998-9
978-1-351-26290-3 - ISSN :
- 1572882X and 09690239
- ISBNs :
- 9783527689989 and 9781351262903
- Volume :
- 26
- Database :
- OpenAIRE
- Journal :
- Cellulose
- Accession number :
- edsair.doi.dedup.....4790a7a5080bdfa107720230ac331d5e