Jia Yiming, Holmberg Krister, Bordes Romain
Department of Chemistry and Chemical Engineering, Applied Chemistry, Chalmers University of Technology, 412 96, Gothenburg, Sweden.
Chempluschem. 2025 Jul;90(7):e202500058. doi: 10.1002/cplu.202500058. Epub 2025 May 27.
In this article, a novel dispersion system is presented for consolidation and hydrophobization of degraded canvases. The dispersions are formulated by combining cellulose nanocrystals (CNC) and hydrophobically modified ethylhydroxyethylcellulose (EHM) with beeswax nanoemulsions. The beeswax nanoemulsion is prepared using the Ouzo effect, a low-energy, surfactant-free, and spontaneous emulsification method. EHM serves as an anchor for CNC and beeswax nanoparticles on the canvas, forming a continuous film and preventing aggregation during the treatment process. Tensile tests and contact angle measurements demonstrate that the dispersions effectively strengthen the canvas and enhance its water resistance, addressing the moisture-induced mechanical limitations observed with previous nanocellulose and polyelectrolyte consolidants. Additionally, the hydrophobicity of the beeswax-CNC/EHM system can be adjusted by varying the beeswax content. Overall, the use of entirely green components and the straightforward preparation process makes this dispersion system highly adaptable for consolidation in cultural heritage conservation, particularly in scenarios where a hydrophobic surface is required.
在本文中,提出了一种用于加固和疏水化降解画布的新型分散体系。该分散体通过将纤维素纳米晶体(CNC)、疏水改性乙基羟乙基纤维素(EHM)与蜂蜡纳米乳液相结合来配制。蜂蜡纳米乳液采用奥祖效应制备,这是一种低能量、无表面活性剂的自发乳化方法。EHM作为CNC和蜂蜡纳米颗粒在画布上的锚定剂,形成连续薄膜并防止处理过程中发生聚集。拉伸试验和接触角测量表明,该分散体有效地增强了画布并提高了其耐水性,解决了先前纳米纤维素和聚电解质加固剂所观察到的由水分引起的机械局限性。此外,蜂蜡-CNC/EHM体系的疏水性可通过改变蜂蜡含量来调节。总体而言,完全使用绿色成分以及简单的制备过程使得该分散体系非常适合用于文化遗产保护中的加固,特别是在需要疏水表面的情况下。