Nanomaterials for Combined Stabilisation and Deacidification of Cellulosic Materials—The Case of Iron-Tannate Dyed Cotton
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Sample Preparation
2.3. Sample Treatment
2.4. Accelerated Ageing
2.5. Sample Characterisation
2.5.1. Sample Conditioning and Weight Changes
2.5.2. Tensile Testing
2.5.3. Colourimetry
2.5.4. SEM
2.5.5. pH Measurements
3. Results and Discussion
3.1. Effect of the Nanosystems for Stabilisation Alone
3.2. Effect of Combined Nanosystems for the Strengthening and Deacidification
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Abbreviations
CMC | carboxymethyl cellulose |
CNC | cellulose nanocrystals |
CNF | cellulose nanofibres |
DP | degree of polymerisation |
EML | elastic modulus at low deformation |
NMR | nuclear magnetic resonance |
NP | nanoparticle |
PEI | polyethylenimine |
PVP | polyvinylpyrrolidone |
RH | relative humidity |
SEM | scanning electron microscopy |
SNP | silica nanoparticle |
T | temperature |
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System | Weight Uptake (%) | Before Ageing | After Ageing | Action Provided by the Systems | ||||
---|---|---|---|---|---|---|---|---|
pH | EML (N/mm2) | ΔL* | pH | EML (N/mm2) | ΔL* | |||
T0 | - | 3.6 | 214 ± 64 | - | 4.1 | 253 ± 2 | −1.8 | N/A |
T1 | 2.0 | 4.3 | 287 ± 27 | −1.6 | 4.4 | 309 ± 8 | −3.7 | Strengthening |
T2 | 1.5 | 4.3 | 333 ± 66 | −4.1 | 4.2 | 317 ±24 | −7.5 | Strengthening |
T3 | 2.5 | 4.4 | 234 ± 36 | −5.2 | 4.4 | 359 ±79 | −6.3 | Strengthening |
T0 | - | 3.7 | 181 ± 32 | - | 4.5 | 310 ±25 | −1.6 | N/A |
T4 | 2.5 | 7.3 | 192 ± 25 | −7.3 | 7.6 | 255 ± 43 | −9.4 | Deacidification |
T5 | 4.9 | 7.4 | 290 ± 45 | −9.0 | 7.5 | 305 ± 34 | −8.6 | Deacidification/Strengthening |
T6 | 4.7 | 7.5 | 250 ± 51 | −9.1 | 7.3 | 358 ± 94 | −8.4 | Deacidification/Strengthening |
T7 | 4.7 | 7 | 195 ± 54 | −13.6 | 7.1 | 383 ± 43 | −12.6 | Deacidification/Strengthening |
T8 | 7.3 | 7.4 | 336 ± 82 | −9.4 | 7.4 | 443 ± 22 | −9.3 | Deacidification/Strengthening |
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Palladino, N.; Hacke, M.; Poggi, G.; Nechyporchuk, O.; Kolman, K.; Xu, Q.; Persson, M.; Giorgi, R.; Holmberg, K.; Baglioni, P.; et al. Nanomaterials for Combined Stabilisation and Deacidification of Cellulosic Materials—The Case of Iron-Tannate Dyed Cotton. Nanomaterials 2020, 10, 900. https://doi.org/10.3390/nano10050900
Palladino N, Hacke M, Poggi G, Nechyporchuk O, Kolman K, Xu Q, Persson M, Giorgi R, Holmberg K, Baglioni P, et al. Nanomaterials for Combined Stabilisation and Deacidification of Cellulosic Materials—The Case of Iron-Tannate Dyed Cotton. Nanomaterials. 2020; 10(5):900. https://doi.org/10.3390/nano10050900
Chicago/Turabian StylePalladino, Nicoletta, Marei Hacke, Giovanna Poggi, Oleksandr Nechyporchuk, Krzysztof Kolman, Qingmeng Xu, Michael Persson, Rodorico Giorgi, Krister Holmberg, Piero Baglioni, and et al. 2020. "Nanomaterials for Combined Stabilisation and Deacidification of Cellulosic Materials—The Case of Iron-Tannate Dyed Cotton" Nanomaterials 10, no. 5: 900. https://doi.org/10.3390/nano10050900
APA StylePalladino, N., Hacke, M., Poggi, G., Nechyporchuk, O., Kolman, K., Xu, Q., Persson, M., Giorgi, R., Holmberg, K., Baglioni, P., & Bordes, R. (2020). Nanomaterials for Combined Stabilisation and Deacidification of Cellulosic Materials—The Case of Iron-Tannate Dyed Cotton. Nanomaterials, 10(5), 900. https://doi.org/10.3390/nano10050900