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Solution-Phase Photochemical Nanopatterning Enabled by High-Refractive-Index Beam Pen Arrays

机译:通过高折射率束笔阵列实现的解决方案相位光化学纳瓦图

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A high-throughput, solution-based, scanning-probe photochemical nanopatterning approach, which does not require the use of probes with subwavelength apertures, is reported. Specifically, pyramid arrays made from high-refractive-index polymeric materials were constructed and studied as patterning tools in a conventional liquid-phase beam pen lithography experiment. Two versions of the arrays were explored with either metal-coated or metal-free tips. Importantly, light can be channeled through both types of tips and the appropriate solution phase (e.g., H2O or CH3OH) and focused on subwavelength regions of a substrate to effect a photoreaction in solution that results in localized patterning of a self-assembled monolayer (SAM)-coated Au thin film substrate. Arrays with as many as 4500 pyramid-shaped probes were used to simultaneously initiate thousands of localized free-radical photoreactions (decomposition of a lithium acylphosphinate photoinitiator in an aqueous solution) that result in oxidative removal of the SAM. The technique is attractive since it allows one to rapidly generate features less than 200 nm in diameter, and the metal-free tips afford more than 10-fold higher intensity than the tips with nanoapertures over a micrometer propagation length. In principle, this mask-free method can be utilized as a versatile tool for performing a wide variety of photochemistries across multiple scales that may be important in high-throughput combinatorial screening applications related to chemistry, biology, and materials science.
机译:报道了一种高通量,基于解决方案,扫描探针光化学纳米透视方法,其不需要使用具有亚波长孔的探针。具体地,由高折射率聚合物材料制成的金字塔阵列被构造和研究作为传统的液相束笔光刻实验中的图案化工具。使用金属涂层或无金属尖端探索了两个版本的阵列。重要的是,光可以通过两种类型的尖端和适当的溶液相(例如,H 2 O或CH 3 OH)来引导光,并聚焦在基板的亚波长区域上,以实现溶液中的光反应,从而导致自组装单层的局部图案化(SAM ) - 涂层Au薄膜基材。使用多达4500金字塔形探针的阵列用于同时发起数千个局部自由基光反应(在水溶液中的锂磷酸锂光引发剂的分解),其导致氧化胺的氧化剂去除。该技术具有吸引力,因为它允许一个迅速产生小于200nm的特征,并且无金属尖端的强度比微米传播长度的沿纳米腹部的尖端高于10倍。原则上,这种无面具方法可以用作多种光学化学性的多种光学内容,这在多种尺度上可能在与化学,生物学和材料科学相关的高通量组合筛选应用中可能是重要的。

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