Application of Starch Based Coatings as a Sustainable Solution to Preserve and Decipher the Charred Documents
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Preparation
Charred Samples
2.2. Method of Preservative Preparation
Microwave Synthesis of Starch Analog
2.3. Spectral Characterization
2.4. Application of Starch Analog
2.5. Handwriting Character Recognition (HCR)
2.6. Video Spectral Comparator (VSC)
2.7. Mechanical Properties
2.7.1. Paper Folding Test
2.7.2. Bursting Strength Test
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Paper Type | Temperature (°C) | Color and Effect on Paper | Effect on Written Text |
---|---|---|---|
75 g/m2 A4 size white JK copier | 280 | Light brown to white | Visible |
290 | Brown in major areas while light brown in some places | Faintly visible in some places | |
300 | Dark brown to black with slightly curly edges | Completely invisible | |
Above 300 | Black to grey with gradual ignition from edges, turned into ashes | Completely invisible | |
80 g/m2 A4 size white JK copier | 290 | Light brown to white in a half–half area | Visible |
300 | Brown in the major area | Faintly visible in some places | |
301 | Completely brown in full area | Invisible | |
302 | Dark brown to black with curly edges | Completely invisible | |
Above 302 | Black to grey with ignition from edges, turning into grey ashes | Completely invisible | |
A4 size bond paper Affidavit (e-stamp) | 300 | Light brown to white in half the area | Visible |
302 | Brown in the major area | Faintly visible | |
304 | Dark brown in full area | Very faintly visible | |
305 | Dark brown to black | Completely invisible | |
Above 305 | Black to grey, ignited, turned into ashes | Completely invisible |
Concentration (w/v) | Result |
---|---|
2% | Transparent, low viscosity, not providing appreciable coating, strength, and decipherment |
4% | Transparent, viscosity not up to mark, not providing appreciable strength and decipherment |
6% | Transparent, appreciable viscosity was suitable for the application, providing appreciable strength and decipherment |
8% | Opaque and cloudy, high viscosity, white flaky appearance, not suitable for application and decipherment, cracks observed after drying |
Bond Stretching ↓ | Wavenumber (cm−1) |
---|---|
Starch Powder | |
α-1,4-glycosidic | 1143.78 |
α-1,6-glycosidic | 990.79 & 851.51 |
1°-OH | 3748.08 |
2°-OH | 3271.32 |
Starch Analog | |
-OH | 3295.90 |
C-O-C Stretch | 1081.92 |
Glycerol | |
-OH | 3293.10 |
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Kesarwani, S.; Tripathy, D.B.; Kumar, S. Application of Starch Based Coatings as a Sustainable Solution to Preserve and Decipher the Charred Documents. Coatings 2023, 13, 1521. https://doi.org/10.3390/coatings13091521
Kesarwani S, Tripathy DB, Kumar S. Application of Starch Based Coatings as a Sustainable Solution to Preserve and Decipher the Charred Documents. Coatings. 2023; 13(9):1521. https://doi.org/10.3390/coatings13091521
Chicago/Turabian StyleKesarwani, Sonali, Divya Bajpai Tripathy, and Suneet Kumar. 2023. "Application of Starch Based Coatings as a Sustainable Solution to Preserve and Decipher the Charred Documents" Coatings 13, no. 9: 1521. https://doi.org/10.3390/coatings13091521
APA StyleKesarwani, S., Tripathy, D. B., & Kumar, S. (2023). Application of Starch Based Coatings as a Sustainable Solution to Preserve and Decipher the Charred Documents. Coatings, 13(9), 1521. https://doi.org/10.3390/coatings13091521