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ORIGINAL RESEARCH article

Front. Mater.
Sec. Polymeric and Composite Materials
Volume 11 - 2024 | doi: 10.3389/fmats.2024.1406583

Optimization of Preparation Techniques for High-Temperature Resistant Waterborne Phenolic-Epoxy Resin Emulsion under Low Carbon Background Provisionally Accepted

Yu Lu1 Jing Gu1 Jinhe Yuan1 Lina Wu1 Xinxin Wang1 Xiaofang Xu1 Fuqiang Ye1  Libin He1*
  • 1Suzhou Paint-key Material Technology Co, LTD, China

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In light of escalating global climate change concerns and the pressing need to address industries with high carbon emissions and pollution, enhancing the preparation of phenol-formaldehyde epoxy resins has emerged as a critical research focus. This study seeks to fabricate waterborne phenolformaldehyde epoxy resins with superior performance by investigating pivotal factors influencing their properties and refining preparation methods. Utilizing tetrabutylammonium bromide as a phase transfer catalyst, the phenol-formaldehyde epoxy resins are synthesized via a two-step alkalization process. Subsequent etherification reactions involve modifying the phenol-formaldehyde epoxy resins using cationic modifier diethanolamine (DEA) and anionic modifier sodium p-amino benzenesulfonate, resulting in waterborne phenol-formaldehyde epoxy resins. Subsequently, in-situ synthesis is employed to produce nanoscale silica (SiO2) modified waterborne phenol-formaldehyde epoxy resins. The findings reveal that when the ratio of n1 to n2 falls within the range of 1/3.25 to 1/3, the emulsion displays a moderate particle size and maintains stable storage. Furthermore, an increase in DEA dosage leads to a particle size of less than 324nm when the ratio of n1 to n2 exceeds 1/3, indicating stability. Moreover, optimal stability and prolonged storage lifespan are achieved when the nano SiO2 content is approximately 1.5%. This study contributes by synthesizing highquality waterborne phenol-formaldehyde epoxy resin emulsions through optimized methods. The research findings offer a theoretical foundation for this domain and support the practical application of low-carbon and environmentally friendly concepts in the coatings industry.

Keywords: waterborne phenolic-epoxy resin, Emulsion preparation, Nano SiO2, High temperature resistance, Low carbon, Environmental protection

Received: 25 Mar 2024; Accepted: 16 Apr 2024.

Copyright: © 2024 Lu, Gu, Yuan, Wu, Wang, Xu, Ye and He. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

* Correspondence: Mx. Libin He, Suzhou Paint-key Material Technology Co, LTD, Suzhou, 215400, Jiangsu province, China