Achieving a Superhydrophobic, Moisture, Oil and Gas Barrier Film Using a Regenerated Cellulose–Calcium Carbonate Composite Derived from Paper Components or Waste
Abstract
:1. Introduction
2. Materials and Methods
2.1. Dope Formulation and Preparation of Regenerated Cellulose Films
2.2. Surface Treatment of the Film Using Aqueous AKD Emulsion
2.3. Characterisation
2.3.1. Thickness, Density, Weight, and Porosity
2.3.2. Fourier-Transform Infrared Spectroscopy (FTIR), X-ray Diffractometry (XRD), and Scanning Electron Microscopy (SEM)
2.3.3. Mechanical Analysis
2.3.4. Water Contact Angle (θWCA) and Roll-Off Angle (θRoA)
2.3.5. Water Vapour Transmission Rate (WVTR), and Oxygen Transmission Rate (O2TR)
2.3.6. Grease/Oil Penetration Rate
2.3.7. Abrasion Resistance Property
3. Results and Discussion
3.1. Characterisation of the Composite Films
3.2. Mechanical Properties of the Films
3.3. Changing from Hydrophilicity to Reach the Level of Superhydrophobicity
3.4. Barrier Properties of the Films
3.4.1. Water Vapour Transmission Rate
3.4.2. Grease/Oil Resistance
3.4.3. Oxygen Gas Permeation Properties
3.5. Reaching the Practical Barrier Property Target-Product Surface Robustness
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Sample Abbreviation | Dope Chemical Composition in IL | Post Film-Formed Treatment |
---|---|---|
V | 13 w/w% of virgin cellulose | - |
C | 13 w/w% preground Copy Paper | - |
CA | 13 w/w% preground Copy Paper/1 w/w% AKD | - |
CAO | 13 w/w% preground Copy Paper/1 w/w% AKD | oven-dried |
CA-S | 13 w/w% preground Copy Paper/0.5 w/w% AKD + 0.5 w/w% starch | - |
CA-SO | 13 w/w% preground Copy Paper/0.5 w/w% AKD + 0.5 w/w% starch | oven-dried |
CAO+AO | 13 w/w% preground Copy Paper/1 w/w% AKD | oven-dried, dip in hot AKD emulsion, oven-dried |
CAO+PAO | 13 w/w% preground Copy Paper/1 w/w% AKD | oven-dried, pre-cooled, dip in hot AKD emulsion, oven-dried |
CA-SO+PAO | 13 w/w% preground Copy Paper/0.5 w/w% AKD + 0.5 w/w% starch | oven-dried, pre-cooled, dip in hot AKD emulsion, oven-dried |
CAO+PAO+PA | 13 w/w% preground Copy Paper/1 w/w% AKD | oven-dried, pre-cooled, first dip in hot AKD emulsion, oven-dried, pre-cooled, second dip in hot AKD emulsion (without final oven drying) |
CAO+PAO+PAO | 13 w/w% preground Copy Paper/1 w/w% AKD | oven-dried, pre-cooled, first dip in hot AKD emulsion, oven-dried, pre-cooled, second dip in hot AKD emulsion, oven-dried |
CA-SO+PAO+PAO | 13 w/w% preground Copy Paper/0.5 w/w% AKD + 0.5 w/w% starch | oven-dried, pre-cooled, first dip in hot AKD emulsion, oven-dried, pre-cooled, second dip in hot AKD emulsion, oven-dried |
Sample label | Thickness/ µm | Density/ g cm−3 | Basis Weight/ g m−2 | Porosity/ % | Coated AKD/ g m−2 |
---|---|---|---|---|---|
V | 15.75 ± 5.72 | 0.62 ± 0.01 | 29.53 ± 0.86 | 57.53 | - |
C | 34.83 ± 5.38 | 0.77 ± 0.08 | 34.89 ± 5.83 | 32.51 | - |
CA | 22.01 ± 8.49 | 0.67 ± 0.08 | 33.98 ± 5.68 | 41.28 | - |
CA-S | 59.00 ± 8.02 | 0.71 ± 0.03 | 42.36 ± 2.00 | 37.77 | - |
CAO+AO | 93.80 ± 1.10 | 0.89 ± 0.01 | 49.04 ± 1.09 | 21.99 | 15.06 |
CAO+PAO+PAO | 216.01 ± 7.23 | 1.08 ± 0.03 | 68.88 ± 1.87 | 5.34 | 34.90 |
CA-SO+PAO | 129.33 ± 9.40 | 0.74 ± 0.02 | 52.97 ± 3.90 | 35.14 | 10.61 |
CA-SO+PAO+PAO | 211.21 ± 9.25 | 1.20 ± 0.07 | 69.55 ± 4.55 | 5.16 | 27.19 |
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Imani, M.; Dimic-Misic, K.; Kostic, M.; Barac, N.; Janackovic, D.; Uskokovic, P.; Ivanovska, A.; Lahti, J.; Barcelo, E.; Gane, P. Achieving a Superhydrophobic, Moisture, Oil and Gas Barrier Film Using a Regenerated Cellulose–Calcium Carbonate Composite Derived from Paper Components or Waste. Sustainability 2022, 14, 10425. https://doi.org/10.3390/su141610425
Imani M, Dimic-Misic K, Kostic M, Barac N, Janackovic D, Uskokovic P, Ivanovska A, Lahti J, Barcelo E, Gane P. Achieving a Superhydrophobic, Moisture, Oil and Gas Barrier Film Using a Regenerated Cellulose–Calcium Carbonate Composite Derived from Paper Components or Waste. Sustainability. 2022; 14(16):10425. https://doi.org/10.3390/su141610425
Chicago/Turabian StyleImani, Monireh, Katarina Dimic-Misic, Mirjana Kostic, Nemanja Barac, Djordje Janackovic, Petar Uskokovic, Aleksandra Ivanovska, Johanna Lahti, Ernest Barcelo, and Patrick Gane. 2022. "Achieving a Superhydrophobic, Moisture, Oil and Gas Barrier Film Using a Regenerated Cellulose–Calcium Carbonate Composite Derived from Paper Components or Waste" Sustainability 14, no. 16: 10425. https://doi.org/10.3390/su141610425
APA StyleImani, M., Dimic-Misic, K., Kostic, M., Barac, N., Janackovic, D., Uskokovic, P., Ivanovska, A., Lahti, J., Barcelo, E., & Gane, P. (2022). Achieving a Superhydrophobic, Moisture, Oil and Gas Barrier Film Using a Regenerated Cellulose–Calcium Carbonate Composite Derived from Paper Components or Waste. Sustainability, 14(16), 10425. https://doi.org/10.3390/su141610425