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Updated: Sep 10, 2025

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Evaluation of the Curing of Adhesive Systems by Rheological and Thermal Testing
Published on: July 3, 2020
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ウルシオールとアルカリ・リグニンによる持続的な熱固化コーティング:酸化的急性熱固化行為,構造的相互作用,および機能的特性
Ye-Rin Shin1, Gyeong-Ig Hwang1, Shinwoo Lee1
1Department of Applied Organic Materials Engineering, Chungnam National University, Daejeon 34134, Republic of Korea.
International journal of biological macromolecules
|August 20, 2025
まとめ
この研究は,ウルシオールとリグニンを混ぜることで,持続可能で高性能なコーティングが作られることを明らかにしています. リグニンは熱固化を加速し 材料の性能を向上させ 有望なバイオベースの代替品を提供します
科学分野:
- ポリマー科学
- 材料科学
- 持続可能な化学
背景:
- ウルシオルは天然のポリマーで 自治し水に耐性があります
- リグニン混合物は,ウルシオールの水性および機械的強さを改善することを目的としています.
- ウルシオール/リグニン混合物の熱固化メカニズムと運動学は十分に理解されていません.
研究 の 目的:
- ウルシオール/リグニン混合物の熱固化メカニズムと構造-特性関係を調査する.
- バイオベースの材料から持続可能な高性能ポリマーコーティングを開発する.
- ウルシオールの酸化基質ポリメリゼーションにおけるリグニンの役割を明らかにする.
主な方法:
- ウルシオールとアルカリ・リグニン (0-75 wt%) を混合し,140°Cで熱固化.
- 非同温差スキャニングカロミテリー (DSC) を用いて評価された固化運動量.
- 分析された化学構造,熱安定性 (TGA),表面形状 (SEM,AFM),および機械的硬さ (Shore D).
主要な成果:
- リグニンは低温で固化を加速し,過剰なリグニン (重量50%以上) は固化を阻害した.
- ウルシオールとリグニンの間の酸化基のポリメリゼーションの最初の証拠,リグニンのヒドロキシル群を含む.
- 熱安定性の向上 (~517°Cまでの分解) と,最大50%のリグニンによるシェアD硬さ向上
- 高負荷でのリグニン集積は,表面の粗さと機械的なネットワークの異質性に影響しました.
結論:
- ウルシオールとリグニンの混合物は,熱的に固まるバイオベースのコーティングとして潜在性を示しています.
- 最適なリグニン含有量 (25-50 wt%) は,性能と持続可能性を高めます.
- リグニンは,ウルシオールの酸化基質ポリメリゼーションに積極的に参加し,材料の性質を改善する.
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