Using Aerosol OT in Hexane Solution to Synthesize Calcium Nitrate Self-Healing Refined Microcapsules for Construction Applications
Abstract
:1. Introduction
2. Experimental Program
2.1. Microcapsule Preparation
2.1.1. Synthesis
2.1.2. Emulsification and Polymerization
2.2. Scanning Electron Microscopy
2.3. Mortar Testing
3. Results and Discussion
3.1. Microcapsule Scanning Electron Microscopy
3.2. Compression and Flexural Strengths
4. Conclusions
- The diameters of the microcapsules prepared using the procedure with Aresol-OT were found to be between 1 µm and 5 µm. They were smaller than those of the microcapsules prepared using previous preparation procedures. The microcapsule shape was found to be perfectly spherical and uniform;
- The scanning electron microscope images have shown that the approximate shell thickness of the microcapsules was in the range of 0.35 µm and 0.87 µm, which was smaller than those reported in the literature. This may suggest that rupturing the microcapsule shell with the crack tip becomes easier when the shell thickness is thinner;
- The 7th day compressive and flexural strength reductions were alleviated for the mixes with microcapsules prepared using AOT compared to those with microcapsules prepared using the original preparation procedure. The compressive and flexural strengths of the mortar mixes containing microcapsules prepared with AOT were only 0.27% and 0.31% lower than those of the control, which could be considered negligible;
- However, the compressive and flexural strength reductions were 0.34% and 15.30%, respectively, for the mixes containing microcapsules prepared using the original preparation procedure (i.e., containing sulfonic acid). This indicates that preparing self-healing microcapsules using AOT can reduce the potential adverse effects on the mechanical properties, especially the flexural strength, of the cementitious mixes.
- The visual observation of the mortar prism fracture surface images has shown that the distribution of the microcapsules prepared using AOT was more uniform than those prepared using the original preparation procedure. This observation suggests that using AOT for the preparation of the microcapsules refines the mix physical properties and may enhance the overall healing efficiency of such microcapsules.
5. Future Work
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Aqueous Phase | Constituent | Amount (g) | Continuous Phase | Constituent | Amount (g) |
Urea | 5.0 | Organic Solvent (Hexane) | 180.0 | ||
Formaldehyde (37% solution) | 12.67 | ||||
Resorcinol | 0.5 | ||||
Ammonium Chloride | 0.5 | Dioctyl Sodium Sulfosuccinate (Aerosol-OT) | 5.8 | ||
Calcium Nitrate | 10.0 | ||||
Distilled Water | 50.0 |
Constituent | Quantity | |
---|---|---|
Class 42.5 R Portland cement CEM I, complying with EN 197-1(grams) | 740 | |
Natural Sand (Conformance to BS EN 12620) (grams) | 2035 | |
Water (grams) | 359 | |
Microcapsules | % By weight of cement | 0.00, 0.75 |
grams | 0.00, 5.55 |
Mix ID | Batch No. | MC Concentration (% by Weight of Cement) | No. of Samples (Compression Test) | No. of Samples (Flexural Test) |
---|---|---|---|---|
Without MC (Control) | 1 | 0.00 | 3 | 3 |
2 | 3 | 3 | ||
With 0.75 MC (original procedure [4]) | 1 | 0.75 | 3 | 3 |
2 | 3 | 3 | ||
With 0.75 MC (with AOT) | 1 | 0.75 | 3 | 3 |
2 | 3 | 3 |
Sample | 0.00 MC (Control) | 0.75 MC (Original Procedure) | 0.75 MC (with AOT) |
---|---|---|---|
1 | 27.82 | 28.97 | 26.86 |
2 | 25.62 | 27.82 | 28.73 |
3 | 27.79 | 29.84 | 27.38 |
4 | 30.23 | 27.41 | 29.27 |
5 | 26.99 | 26.33 | 27.77 |
6 | 28.98 | 26.49 | 26.97 |
Average, (µ) | 27.91 | 27.81 | 27.83 |
Stand. Dev.(σ) | 1.59 | 1.38 | 0.98 |
% Reduction | - | 0.34 | 0.27 |
Sample | 0.00 MC (Control) | 0.75 MC (Original Procedure) | 0.75 MC (with AOT) |
---|---|---|---|
1 | 3.70 | 3.21 | 3.88 |
2 | 4.28 | 3.03 | 3.38 |
3 | 3.48 | 2.54 | 3.78 |
4 | 3.87 | 3.11 | 3.97 |
5 | 3.62 | 2.94 | 3.64 |
6 | 3.49 | 3.16 | 3.83 |
Average, (µ) | 3.74 | 3.17 | 3.73 |
Stand. Dev.(σ) | 0.30 | 0.20 | 0.21 |
% Reduction | - | 15.30 | 0.31 |
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Taqa, A.A.; Suleiman, G.; Senouci, A.; Mohsen, M.O. Using Aerosol OT in Hexane Solution to Synthesize Calcium Nitrate Self-Healing Refined Microcapsules for Construction Applications. Buildings 2022, 12, 751. https://doi.org/10.3390/buildings12060751
Taqa AA, Suleiman G, Senouci A, Mohsen MO. Using Aerosol OT in Hexane Solution to Synthesize Calcium Nitrate Self-Healing Refined Microcapsules for Construction Applications. Buildings. 2022; 12(6):751. https://doi.org/10.3390/buildings12060751
Chicago/Turabian StyleTaqa, Ala Abu, Ghassan Suleiman, Ahmed Senouci, and Mohamed O. Mohsen. 2022. "Using Aerosol OT in Hexane Solution to Synthesize Calcium Nitrate Self-Healing Refined Microcapsules for Construction Applications" Buildings 12, no. 6: 751. https://doi.org/10.3390/buildings12060751
APA StyleTaqa, A. A., Suleiman, G., Senouci, A., & Mohsen, M. O. (2022). Using Aerosol OT in Hexane Solution to Synthesize Calcium Nitrate Self-Healing Refined Microcapsules for Construction Applications. Buildings, 12(6), 751. https://doi.org/10.3390/buildings12060751