Effects and Modification Mechanisms of Different Plasma Treatments on the Surface Wettability of Different Woods

Forests Pub Date : 2024-07-21 DOI:10.3390/f15071271
Zhigang Duan, Yongzhi Fu, Guanben Du, Xiaojian Zhou, Linkun Xie, Taohong Li
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Abstract

Plasma treatment of wood surfaces has shown significant effects, but different excitation methods used for different species of wood generally result in varied characteristics of wood surfaces. Secondly, plasma modification greatly enhances the absorption of liquids by wood, but the relationship between liquid absorption and surface wettability is rarely studied. Limited detailed investigation of the modification effects and mechanisms has hindered the large-scale applications of plasma treatment in the wood industry. In this study, two typical plasmas, radio frequency (RF) plasma and gliding arc discharge (GAD) plasma, were employed to treat three species of wood: poplar, black walnut, and sapele. By focusing on changes in the contact angle of the wood surface, an exponential equation fitting method is used to determine the measurement time for contact angles. The research identified that factors contributing to the decrease in contact angle after plasma modification include not only the increase in surface energy but also liquid absorption. SEM and XPS analyses demonstrate that plasma etching accelerated liquid absorption by modifying the surface topography, while the increase in surface energy was due to the addition of oxygen-containing groups. High-valence C=O and O-C=O groups serve as indicators of plasma-induced surface chemical reactions. RF modification primarily features surface etching, whereas GAD significantly increases the active surface groups. Thus, different plasmas, due to their distinct excitation modes, produce diverse modification effects on wood. Considering the various physical and chemical properties of plasma-modified wood surfaces, recommendations for adhesive use on plasma-modified wood are provided.
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不同等离子处理对不同木材表面润湿性的影响和改性机制
等离子体处理木材表面的效果显著,但对不同种类的木材采用不同的激发方法通常会导致木材表面的特性各不相同。其次,等离子体改性大大提高了木材对液体的吸收能力,但对液体吸收与表面润湿性之间的关系却鲜有研究。对改性效果和机理的详细研究有限,阻碍了等离子体处理在木材工业中的大规模应用。在这项研究中,采用了两种典型的等离子体--射频(RF)等离子体和滑弧放电(GAD)等离子体来处理三种木材:白杨、黑胡桃和沙比利。通过关注木材表面接触角的变化,采用指数方程拟合法确定接触角的测量时间。研究发现,等离子体改性后导致接触角减小的因素不仅包括表面能量的增加,还包括液体吸收。SEM 和 XPS 分析表明,等离子刻蚀通过改变表面形貌加速了液体吸收,而表面能的增加是由于添加了含氧基团。高价的 C=O 和 O-C=O 基团是等离子体诱导表面化学反应的指标。射频改性的主要特点是表面蚀刻,而 GAD 则显著增加了表面活性基团。因此,不同的等离子体由于其不同的激发模式,会对木材产生不同的改性效果。考虑到等离子体改性木材表面的各种物理和化学特性,本文提出了在等离子体改性木材上使用粘合剂的建议。
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