Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability

Research output: Contribution to journalJournal articleResearchpeer-review

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Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability. / Paulraj, Thomas; Riazanova, Anastasia V; Yao, Kun; Andersson, Richard L; Müllertz, Anette; Svagan, Anna J.

In: Biomacromolecules, Vol. 18, No. 4, 10.04.2017, p. 1401-1410.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Paulraj, T, Riazanova, AV, Yao, K, Andersson, RL, Müllertz, A & Svagan, AJ 2017, 'Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability', Biomacromolecules, vol. 18, no. 4, pp. 1401-1410. https://doi.org/10.1021/acs.biomac.7b00126

APA

Paulraj, T., Riazanova, A. V., Yao, K., Andersson, R. L., Müllertz, A., & Svagan, A. J. (2017). Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability. Biomacromolecules, 18(4), 1401-1410. https://doi.org/10.1021/acs.biomac.7b00126

Vancouver

Paulraj T, Riazanova AV, Yao K, Andersson RL, Müllertz A, Svagan AJ. Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability. Biomacromolecules. 2017 Apr 10;18(4):1401-1410. https://doi.org/10.1021/acs.biomac.7b00126

Author

Paulraj, Thomas ; Riazanova, Anastasia V ; Yao, Kun ; Andersson, Richard L ; Müllertz, Anette ; Svagan, Anna J. / Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability. In: Biomacromolecules. 2017 ; Vol. 18, No. 4. pp. 1401-1410.

Bibtex

@article{9b9c3cc2ac324f28b161462b3c097236,
title = "Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability",
abstract = "Green, all-polysaccharide based microcapsules with mechanically robust capsule walls and fast, stimuli-triggered, and switchable permeability behavior show great promise in applications based on selective and timed permeability. Taking a cue from nature, the build-up and composition of plant primary cell walls inspired the capsule wall assembly, because the primary cell walls in plants exhibit high mechanical properties despite being in a highly hydrated state, primarily owing to cellulose microfibrils. The microcapsules (16 ± 4 μm in diameter) were fabricated using the layer-by-layer technique on sacrificial CaCO3 templates, using plant polysaccharides (pectin, cellulose nanofibers, and xyloglucan) only. In water, the capsule wall was permeable to labeled dextrans with a hydrodynamic diameter of ∼6.6 nm. Upon exposure to NaCl, the porosity of the capsule wall quickly changed allowing larger molecules (∼12 nm) to permeate. However, the porosity could be restored to its original state by removal of NaCl, by which permeants became trapped inside the capsule's core. The high integrity of cell wall was due to the CNF and the ON/OFF alteration of the permeability properties, and subsequent loading/unloading of molecules, could be repeated several times with the same capsule demonstrating a robust microcontainer with controllable permeability properties.",
author = "Thomas Paulraj and Riazanova, {Anastasia V} and Kun Yao and Andersson, {Richard L} and Anette M{\"u}llertz and Svagan, {Anna J}",
year = "2017",
month = apr,
day = "10",
doi = "10.1021/acs.biomac.7b00126",
language = "English",
volume = "18",
pages = "1401--1410",
journal = "Biomacromolecules",
issn = "1525-7797",
publisher = "American Chemical Society",
number = "4",

}

RIS

TY - JOUR

T1 - Bioinspired Layer-by-Layer Microcapsules Based on Cellulose Nanofibers with Switchable Permeability

AU - Paulraj, Thomas

AU - Riazanova, Anastasia V

AU - Yao, Kun

AU - Andersson, Richard L

AU - Müllertz, Anette

AU - Svagan, Anna J

PY - 2017/4/10

Y1 - 2017/4/10

N2 - Green, all-polysaccharide based microcapsules with mechanically robust capsule walls and fast, stimuli-triggered, and switchable permeability behavior show great promise in applications based on selective and timed permeability. Taking a cue from nature, the build-up and composition of plant primary cell walls inspired the capsule wall assembly, because the primary cell walls in plants exhibit high mechanical properties despite being in a highly hydrated state, primarily owing to cellulose microfibrils. The microcapsules (16 ± 4 μm in diameter) were fabricated using the layer-by-layer technique on sacrificial CaCO3 templates, using plant polysaccharides (pectin, cellulose nanofibers, and xyloglucan) only. In water, the capsule wall was permeable to labeled dextrans with a hydrodynamic diameter of ∼6.6 nm. Upon exposure to NaCl, the porosity of the capsule wall quickly changed allowing larger molecules (∼12 nm) to permeate. However, the porosity could be restored to its original state by removal of NaCl, by which permeants became trapped inside the capsule's core. The high integrity of cell wall was due to the CNF and the ON/OFF alteration of the permeability properties, and subsequent loading/unloading of molecules, could be repeated several times with the same capsule demonstrating a robust microcontainer with controllable permeability properties.

AB - Green, all-polysaccharide based microcapsules with mechanically robust capsule walls and fast, stimuli-triggered, and switchable permeability behavior show great promise in applications based on selective and timed permeability. Taking a cue from nature, the build-up and composition of plant primary cell walls inspired the capsule wall assembly, because the primary cell walls in plants exhibit high mechanical properties despite being in a highly hydrated state, primarily owing to cellulose microfibrils. The microcapsules (16 ± 4 μm in diameter) were fabricated using the layer-by-layer technique on sacrificial CaCO3 templates, using plant polysaccharides (pectin, cellulose nanofibers, and xyloglucan) only. In water, the capsule wall was permeable to labeled dextrans with a hydrodynamic diameter of ∼6.6 nm. Upon exposure to NaCl, the porosity of the capsule wall quickly changed allowing larger molecules (∼12 nm) to permeate. However, the porosity could be restored to its original state by removal of NaCl, by which permeants became trapped inside the capsule's core. The high integrity of cell wall was due to the CNF and the ON/OFF alteration of the permeability properties, and subsequent loading/unloading of molecules, could be repeated several times with the same capsule demonstrating a robust microcontainer with controllable permeability properties.

U2 - 10.1021/acs.biomac.7b00126

DO - 10.1021/acs.biomac.7b00126

M3 - Journal article

C2 - 28323423

VL - 18

SP - 1401

EP - 1410

JO - Biomacromolecules

JF - Biomacromolecules

SN - 1525-7797

IS - 4

ER -

ID: 185406931