Tags

Type your tag names separated by a space and hit enter

Isolation of thermally stable cellulose nanocrystals by phosphoric acid hydrolysis.
Biomacromolecules. 2013 Apr 08; 14(4):1223-30.B

Abstract

On account of their intriguing mechanical properties, low cost, and renewable nature, high-aspect-ratio cellulose nanocrystals (CNCs) are an attractive component for many nanomaterials. Due to hydrogen bonding between their surface hydroxyl groups, unmodified CNCs (H-CNCs) aggregate easily and are often difficult to disperse. It is shown here that on account of ionic repulsion between charged surface groups, slightly phosphorylated CNCs (P-CNCs, average dimensions 31 ± 14 × 316 ± 127 nm, surface charge density = 10.8 ± 2.7 mmol/kg cellulose), prepared by controlled hydrolysis of cotton with phosphoric acid, are readily dispersible and form stable dispersions in polar solvents such as water, dimethyl sulfoxide, and dimethylformamide. Thermogravimetric analyses reveal that these P-CNCs exhibit a much higher thermal stability than partially sulfated CNCs (S-CNCs), which are frequently employed, but suffer from limited thermal stability. Nanocomposites of an ethylene oxide-epichlorohydrin copolymer and H-CNCs, S-CNCs, and P-CNCs were prepared, and their mechanical properties were studied by dynamic mechanical thermal analysis. The results show that P-CNCs offer a reinforcing capability that is comparable to that of H-CNCs or S-CNCs.

Authors+Show Affiliations

Adolphe Merkle Institute and Fribourg Center for Nanomaterials, University of Fribourg, Route de l'Ancienne Papeterie, 1723 Marly, Switzerland.No affiliation info availableNo affiliation info availableNo affiliation info available

Pub Type(s)

Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

23458473

Citation

Camarero Espinosa, Sandra, et al. "Isolation of Thermally Stable Cellulose Nanocrystals By Phosphoric Acid Hydrolysis." Biomacromolecules, vol. 14, no. 4, 2013, pp. 1223-30.
Camarero Espinosa S, Kuhnt T, Foster EJ, et al. Isolation of thermally stable cellulose nanocrystals by phosphoric acid hydrolysis. Biomacromolecules. 2013;14(4):1223-30.
Camarero Espinosa, S., Kuhnt, T., Foster, E. J., & Weder, C. (2013). Isolation of thermally stable cellulose nanocrystals by phosphoric acid hydrolysis. Biomacromolecules, 14(4), 1223-30. https://doi.org/10.1021/bm400219u
Camarero Espinosa S, et al. Isolation of Thermally Stable Cellulose Nanocrystals By Phosphoric Acid Hydrolysis. Biomacromolecules. 2013 Apr 8;14(4):1223-30. PubMed PMID: 23458473.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Isolation of thermally stable cellulose nanocrystals by phosphoric acid hydrolysis. AU - Camarero Espinosa,Sandra, AU - Kuhnt,Tobias, AU - Foster,E Johan, AU - Weder,Christoph, Y1 - 2013/03/22/ PY - 2013/3/6/entrez PY - 2013/3/6/pubmed PY - 2013/9/27/medline SP - 1223 EP - 30 JF - Biomacromolecules JO - Biomacromolecules VL - 14 IS - 4 N2 - On account of their intriguing mechanical properties, low cost, and renewable nature, high-aspect-ratio cellulose nanocrystals (CNCs) are an attractive component for many nanomaterials. Due to hydrogen bonding between their surface hydroxyl groups, unmodified CNCs (H-CNCs) aggregate easily and are often difficult to disperse. It is shown here that on account of ionic repulsion between charged surface groups, slightly phosphorylated CNCs (P-CNCs, average dimensions 31 ± 14 × 316 ± 127 nm, surface charge density = 10.8 ± 2.7 mmol/kg cellulose), prepared by controlled hydrolysis of cotton with phosphoric acid, are readily dispersible and form stable dispersions in polar solvents such as water, dimethyl sulfoxide, and dimethylformamide. Thermogravimetric analyses reveal that these P-CNCs exhibit a much higher thermal stability than partially sulfated CNCs (S-CNCs), which are frequently employed, but suffer from limited thermal stability. Nanocomposites of an ethylene oxide-epichlorohydrin copolymer and H-CNCs, S-CNCs, and P-CNCs were prepared, and their mechanical properties were studied by dynamic mechanical thermal analysis. The results show that P-CNCs offer a reinforcing capability that is comparable to that of H-CNCs or S-CNCs. SN - 1526-4602 UR - https://www.unboundmedicine.com/medline/citation/23458473/Isolation_of_thermally_stable_cellulose_nanocrystals_by_phosphoric_acid_hydrolysis_ DB - PRIME DP - Unbound Medicine ER -