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Writing chemical patterns using electrospun fibers as nanoscale inkpots for directed assembly of colloidal nanocrystals

机译:写化学模式使用实际上电纺纤维作为定向组装的纳米尺度的墨盒胶状纳米晶体

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摘要

Applications that range from electronics to biotechnology will greatly benefit from low-cost, scalable and multiplex fabrication of spatially defined arrays of colloidal inorganic nanocrystals. In this work, we present a novel additive patterning approach based on the use of electrospun nanofibers (NFs) as inkpots for end-functional polymers. The localized grafting of end-functional polymers from spatially defined nanofibers results in covalently bound chemical patterns. The main factors that determine the width of the nanopatterns are the diameter of the NF and the extent of spreading during the thermal annealing process. Lowering the surface energy of the substrates via silanization and a proper choice of the grafting conditions enable the fabrication of nanoscale patterns over centimeter length scales. The fabricated patterns of end-grafted polymers serve as the templates for spatially defined assembly of colloidal metal and metal oxide nanocrystals of varying sizes (15 to 100 nm), shapes (spherical, cube, rod), and compositions (Au, Ag, Pt, TiO2), as well as semiconductor quantum dots, including the assembly of semiconductor nanoplatelets.
机译:从电子产品到的应用程序生物技术将大大受益于低成本、可伸缩的和多路复用制造空间定义数组的胶态无机纳米晶体。基于使用的添加剂模式的方法静电纺丝(NFs)的墨盒end-functional聚合物。从空间上定义end-functional聚合物纳米纤维导致共价化学模式。的宽度nanopatterns的直径NF和热扩散的程度退火过程。通过硅烷化基板和一个合适的使嫁接的选择条件制造纳米尺度模式/厘米长度尺度。end-grafted聚合物作为模板空间组装胶体金属和定义金属氧化物纳米晶体的大小不一(15100海里),形状(球形、立方体,杆)和成分(Au, Ag)、Pt、二氧化钛),以及半导体量子点,包括组装半导体nanoplatelets。

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