Alkenyl Succinic Anhydride: The Question of Covalent Bonding and Chemistry Considerations for Better Sizing—Review
Abstract
:1. Introduction
2. Debate on ASA Sizing Mechanism in Papermaking
3. Overview of the ASA Mechanism
- One additive (ASA) is usually studied in the laboratory to prevent the influence of other variables while in real papermaking processes many organics, inorganics, additives and even bacteria compete with ASA to dwell with the fiber. In short, there are more uncontrolled variables in field experiments than in lab ones [39,40].
- Lastly, in laboratory studies, sometimes the pulp or the substrate has a special treatment not found in the mill. Such treatment can be ethanol or methanol wash of the pulp or the substrate, although it is well known that these solvents esterify with ASA, and their leftovers in the pulp can mislead the interpretation of FTIR results [23,26,33,41,42].
4. Chemistry Considerations for Better ASA Sizing Application
- Emulsion Stability (better distribution)
- Emulsion Shelf Life
- Emulsion Retention
5. Conclusions
- It was believed that ASA formed covalent bonding with cellulose during the papermaking process. Nevertheless, most recent scientific evidence supports that the major sizing material in a sized paper is hydrolyzed ASA and its salts.
- The amount of covalent bonds between ASA and the fiber is very low and is not a requirement to sizing development.
- Hydrolyzed ASA contributes to the sizing performance; however, the direct application of hydrolyzed ASA to the pulp or the application of hydrolyzed ASA to the sheet leads to flocculation and does not achieve sizing.
- The pH, temperature, conductivity, and the ASA-emulsifier ratio are critical for ASA emulsion stability.
- Alum or PAC, when properly used improve sizing performance.
- The shelf life of the ASA emulsion is about 20 to 30 min. More work is needed to understand how the change in ASA concentration, ASA-starch ratio, temperature, and pH individually or collectively affects the ageing process.
- The use of novel chemistries to stabilize or extend ASA emulsion shelf life should be investigated for large scale availability, health and environmental impacts, and repercussions on the papermaking process.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Ntifafa, Y.; Xu, L.; Bollinger, S.; Ji, Y.; Hart, P.W. Alkenyl Succinic Anhydride: The Question of Covalent Bonding and Chemistry Considerations for Better Sizing—Review. Polymers 2023, 15, 2876. https://doi.org/10.3390/polym15132876
Ntifafa Y, Xu L, Bollinger S, Ji Y, Hart PW. Alkenyl Succinic Anhydride: The Question of Covalent Bonding and Chemistry Considerations for Better Sizing—Review. Polymers. 2023; 15(13):2876. https://doi.org/10.3390/polym15132876
Chicago/Turabian StyleNtifafa, Yao, Lebo Xu, Sara Bollinger, Yun Ji, and Peter W. Hart. 2023. "Alkenyl Succinic Anhydride: The Question of Covalent Bonding and Chemistry Considerations for Better Sizing—Review" Polymers 15, no. 13: 2876. https://doi.org/10.3390/polym15132876
APA StyleNtifafa, Y., Xu, L., Bollinger, S., Ji, Y., & Hart, P. W. (2023). Alkenyl Succinic Anhydride: The Question of Covalent Bonding and Chemistry Considerations for Better Sizing—Review. Polymers, 15(13), 2876. https://doi.org/10.3390/polym15132876