首页> 外文期刊>Chemical engineering journal >Three-dimensional plasma micro-nanotextured cyclo-olefin-polymer surfaces for biomolecule immobilization and environmentally stable superhydrophobic and superoleophobic behavior
【24h】

Three-dimensional plasma micro-nanotextured cyclo-olefin-polymer surfaces for biomolecule immobilization and environmentally stable superhydrophobic and superoleophobic behavior

机译:三维等离子微纳米结构化的环烯烃聚合物表面,用于生物分子固定和环境稳定的超疏水和超疏油行为

获取原文
获取原文并翻译 | 示例
           

摘要

Cyclo-olefin polymer (COP) surfaces are micro-nanotextured using 02 plasma chemistry in one-step process. These surfaces subsequently display multiple functionality, (A) they are stable in time (i.e. non ageing), functional, high surface area, substrates suitable for biomolecule binding, after thermal annealing in order to induce accelerated hydrophobic recovery while preserving the chemical functionality created by the plasma. (B) Alternatively, they are robust and environmentally stable superhydrophobic and superoleophobic surfaces, after mechanical stabilization via wetting-drying and gas-phase coating with a perfluoroctyltrichlorosilane monolayer (PFOTS) or plasma deposited Teflon-like polymer layer. The plasma treated, micro-nanotextured surfaces used for biomolecule binding exhibit remarkable retention of the initially immobilized biomolecule compared to untreated COP surfaces (up to 75%), after washing with aggressive washing solutions (sodium dodecyl sulfate), while showing excellent intensity, uniformity and sensitivity. The superoleophobic COP material surfaces exhibit very high static contact angles (SCA >150 degrees) and very low hysteresis (CAH <10 degrees), for a wide range of liquids from water (surface tension: 72.8 mN/m) to hexadecane (surface tension: 27 mN/m). In addition, these superhydrophobic and superoleophobic surfaces exhibit excellent stability against environmental ageing after 60 continuous cycles of exposure to various harsh environmental conditions (heat, moisture, UV irradiation) in a controlled environment. Finally, the two presented functionalities are combined for the first time on the same COP substrate, creating localized rough hydrophilic and antifouling patterns that exhibit spatially selective biomolecule immobilization inside a microfluidic device. (C) 2016 Elsevier B.V. All rights reserved.
机译:环烯烃聚合物(COP)表面采用02等离子化学技术一步一步进行微纳米处理。这些表面随后显示出多种功能,(A)在热退火后,它们在时间上稳定(即不老化),功能性,高表面积,适合生物分子结合的底物,以诱导加速的疏水性恢复,同时保留由等离子。 (B)或者,在通过湿式干燥和气相涂覆全氟乙基三氯硅烷单层(PFOTS)或等离子沉积的特氟隆状聚合物层进行机械稳定之后,它们是坚固且对环境稳定的超疏水和超疏油表面。在用强力洗涤溶液(十二烷基硫酸钠)洗涤后,与未处理的COP表面(高达75%)相比,用于生物分子结合的经过等离子体处理的微纳米结构化表面显示出了最初固定的生物分子的显着保留能力(高达75%)。和敏感性。超疏液COP材料表面具有非常高的静态接触角(SCA> 150度)和非常低的滞后性(CAH <10度),适用于从水(表面张力:72.8 mN / m)到十六烷(表面张力)的各种液体:27 mN / m)。此外,这些超疏水和超疏油表面在受控环境中连续60个暴露于各种恶劣环境条件(热,湿气,紫外线辐射)的循环后,具有出色的抗环境老化稳定性。最终,将两种提出的功能首次在相同的COP基材上进行组合,创建了局部粗糙的亲水性和防污图案,这些图案在微流体装置内部表现出空间选择性的生物分子固定化。 (C)2016 Elsevier B.V.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号