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首页> 外文期刊>ACS Omega >Rapid Synthesis of Nanoporous Conformal Coatings via Plasma-Enhanced Sequential Infiltration of a Polymer Template
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Rapid Synthesis of Nanoporous Conformal Coatings via Plasma-Enhanced Sequential Infiltration of a Polymer Template

机译:通过等离子增强聚合物模板的顺序渗透快速合成纳米多孔保形涂料

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Nanoporous conformal coating is an important class of materials for electrocatalysis, water purification, antireflective coatings, etc. Common synthesis methods of porous films often require harsh conditions (high temperature and high plasma power) or specific substrate materials. Here, we report a plasma-enhanced sequential infiltration synthesis (PE SIS) as a new?platform toward deposition of nanoporous inorganic films. PE SIS is based on oxygen-plasma-induced rapid conversion of metal precursors selectively adsorbed in a block-copolymer template. Porosity and thickness of resulting materials can be easily controlled by characteristics of the template. PE SIS is conducted under gentle conditions,?and can be applied to a broad range of substrates, including water-sensitive surfaces. PE SIS offers adventurous rapid infiltration with improved ability to obtain highly interconnected porous alumina films with thicknesses up to 5 μm. We show that full infiltration of the polar domain of the polymer template can be achieved upon initial exposure to TMA, followed by its oxygen-plasma-induced conversion into a functional material. Since different types of plasma (such as oxygen, nitrogen, hydrogen, etc.) induce conversion of a broad range of metal precursors, PE SIS opens a new approach for synthesis of highly porous materials with various elemental compositions and stoichiometries.
机译:纳米多孔保形涂层是用于电催化,水净化,抗反射涂层等的一类重要材料。多孔膜的常见合成方法通常需要苛刻的条件(高温和高等离子功率)或特定的基材。在这里,我们报道了等离子体增强的顺序渗透合成(PE SIS)作为一种新的平台,用于沉积纳米多孔无机膜。 PE SIS基于氧等离子体诱导的选择性吸附在嵌段共聚物模板中的金属前体的快速转化。所得材料的孔隙率和厚度可以通过模板的特性轻松控制。 PE SIS在温和的条件下进行,可用于多种基材,包括对水敏感的表面。 PE SIS具有冒险性的快速渗透性,并具有获得厚度高达5μm的高度互连的多孔氧化铝膜的增强能力。我们表明,聚合物模板的极性结构域的完全渗透可以在最初暴露于TMA之后实现,然后由其氧等离子体诱导转化为功能材料。由于不同类型的等离子体(例如氧气,氮气,氢气等)会诱导多种金属前体的转化,因此PE SIS为合成具有各种元素组成和化学计量比的高度多孔材料开辟了一种新方法。

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