首页> 外文期刊>Nordic Pulp & Paper Research Journal >Adjustable wetting of Liquid Flame Spray (LFS) TiO_2-nanoparticle coated board: Batch-type versus roll-to-roll stimulation methods
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Adjustable wetting of Liquid Flame Spray (LFS) TiO_2-nanoparticle coated board: Batch-type versus roll-to-roll stimulation methods

机译:液体火焰喷涂(LFS)TiO_2纳米颗粒涂层板的可调润湿:分批式与卷对卷刺激方法

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摘要

Superhydrophobic nanoparticle coating was created on the surface of board using liquid flame spray (LFS). The LFS coating was carried out continuously in ambient conditions without any additional hydrophobization steps. The contact angle of water (CAW) of ZrO_2, Al_2O_3 and TiO_2 coating was adjusted reversibly from >150° down to ~10-20° using different stimulation methods. From industrial point of view, the controlled surface wetting has been in focus for a long time because it defines the liquid-solid contact area, and furthermore can enhance the mechanical and chemical bonding on the interface between the liquid and the solid. The used stimulation methods included batch-type methods: artificial daylight illumination and heat treatment and roll-to-roll methods: corona, argon plasma, IR (infra red)- and UV (ultra violet)-treatments. On the contrary to batch-type methods, the adjustment and switching of wetting was done only in seconds or fraction of seconds using roll-to-roll stimulation methods. This is significant in the converting processes of board since they are usually continuous, high volume operations. In addition, the creation of microfluidic patterns on the surface of TiO_2 coated board using simple photomasking and surface stimulation was demonstrated. This provides new advantages and possibilities, especially in the field of intelligent printing. Limited durability and poor repellency against low surface tension liquids are presently the main limitations of LFS coatings.
机译:使用液体火焰喷涂(LFS)在木板表面形成超疏水纳米颗粒涂层。 LFS涂层在环境条件下连续进行,没有任何其他的疏水化步骤。 ZrO_2,Al_2O_3和TiO_2涂层的水(CAW)接触角可通过不同的刺激方法从> 150°向下调整到〜10-20°。从工业的角度来看,受控的表面润湿一直是人们关注的焦点,因为它定义了液固接触区域,而且可以增强液体和固体之间的界面上的机械和化学键合。所使用的刺激方法包括间歇式方法:人工日光照射和热处理以及卷对卷方法:电晕,氩等离子体,IR(红外线)和UV(紫外线)处理。与分批式方法相反,使用卷对卷刺激方法仅在几秒或几分之一秒内完成润湿的调节和切换。这对于板的转换过程非常重要,因为它们通常是连续的大批量操作。此外,还证明了使用简单的光掩膜和表面刺激在TiO_2涂层板表面上形成微流控图案。这提供了新的优势和可能性,尤其是在智能打印领域。目前,LFS涂料的主要局限性是其有限的耐久性和对低表面张力液体的排斥性差。

著录项

  • 来源
    《Nordic Pulp & Paper Research Journal》 |2014年第2期|271-279|共9页
  • 作者单位

    SP Technical Research Institute of Sweden, Chemistry, Materials and Surfaces, Drottning Kristinas vaeg 45, Box 5607, SE-114 86 Stockholm, Sweden,Paper Converting and Packaging Technology, Tampere University of Technology, P.O.Box 589, FI-33101 Tampere, Finland;

    Paper Converting and Packaging Technology, Tampere University of Technology, P.O.Box 589, FI-33101 Tampere, Finland;

    Aerosol Physics Laboratory Tampere University of Technology, P.O.Box 589, FI-33101 Tampere, Finland;

    Aerosol Physics Laboratory Tampere University of Technology, P.O.Box 589, FI-33101 Tampere, Finland;

    Aerosol Physics Laboratory Tampere University of Technology, P.O.Box 589, FI-33101 Tampere, Finland;

    Laboratory of Paper Coating and Converting and Center of Functional Materials, Abo Akademi University, Porthaninkatu 3, FI-20500 Turku, Finland;

    Laboratory of Paper Coating and Converting and Center of Functional Materials, Abo Akademi University, Porthaninkatu 3, FI-20500 Turku, Finland;

    Laboratory of Paper Coating and Converting and Center of Functional Materials, Abo Akademi University, Porthaninkatu 3, FI-20500 Turku, Finland;

    Paper Converting and Packaging Technology, Tampere Univ. of Technology, P.O.Box 589, FI-33101 Tampere, Finland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Liquid Flame Spray (LFS); TiO_2; Surface wetting; Surface stimulation; Ultra violet (UV); Infrared (IR); Heat treatment; Atmospheric plasma treatment(APT); Corona treatment;

    机译:液体火焰喷雾(LFS);TiO_2;表面润湿;表面刺激;紫外线(UV);红外线(IR);热处理;大气等离子处理(APT);电晕处理;

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