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Fabrication of Active Surfaces with Metastable Microgel Layers Formed during Breath Figure Templating

机译:在呼吸图模板过程中形成具有亚稳态微凝胶层的活性表面的制备

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摘要

Patterned porous surfaces with responsive functionalities are fabricated by a thermo-responsive microgel-assisted breath figure (BF) process. When water droplets submerge into a polystyrene (PS) solution during formation of a porous surface by the bottom-up BF process, poly(N-isopropylacrylamide)-co-acrylic acid (PNIPAm-co-AA) microgels dispersed in the solution spontaneously assemble at the water-organic interfaces like “Pickering emulsions”, reinforced by capillary flow. The conformal layer of PNIPAm-co-AA microgels lining the pores appears in images of scanning electron microscope (SEM) either as a smooth surface layer (L) or as an array of dome-like protrusions (D), depending on the conditions at which the sample was dried for SEM. The change between L and D morphology correlates with the volume phase transition behavior of the microgels freely suspended: drying at a temperature below the Volume Phase Transition Temperature (VPTT) gives L, and the D morphology is formed by drying at a temperature greater than the VPTT of PNIPAm-co-AA microgels. The morphological transition is shown to accompany a significant change in surface contact angle (CA) relative to a corresponding pore layer made of PS, with L having a CA that is reduced by 85° relative to PS, while the decrease is only 22° for D. Porous structures with morphologically responsive surfaces could find application in biocatalysis or tissue engineering, for example, with functional enzymes sequestered when microgels are collaped and accessible when the microgels are swollen.
机译:具有响应功能的带图案的多孔表面是通过热响应微凝胶辅助呼吸图(BF)工艺制成的。当通过自下而上的BF工艺在形成多孔表面的过程中水滴浸入聚苯乙烯(PS)溶液中时,分散在溶液中的聚(N-异丙基丙烯酰胺)-共丙烯酸(PNIPAm-co-AA)微凝胶自发组装在水-有机界面(如“ Pickering乳液”)处,通过毛细流增强。衬在孔中的PNIPAm-co-AA微凝胶的保形层在扫描电子显微镜(SEM)的图像中显示为光滑表面层(L)或圆顶状突起阵列(D),具体取决于条件将样品干燥用于SEM。 L和D形态之间的变化与自由悬浮的微凝胶的体积相变行为相关:在低于体积相变温度(VPTT)的温度下干燥会得到L,而D形态是通过在高于260°C的温度下干燥而形成的PNIPAm-co-AA微凝胶的VPTT。相对于由PS制成的相应孔隙层,形态转变表现为伴随着表面接触角(CA)的显着变化,其中L的CA相对于PS降低了85°,而对于PS而言,其降低仅为22° D.具有形态学响应性表面的多孔结构可用于生物催化或组织工程中,例如,当微凝胶塌陷时螯合功能性酶,而当微凝胶溶胀时可利用的功能酶。

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