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Nanotransplantation Printing of Crystallographic-Orientation-Controlled Single-Crystalline Nanowire Arrays on Diverse Surfaces

机译:在不同表面上的晶体取向控制的单晶纳米线阵列的纳米传导印刷

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摘要

The fabrication of a highly ordered array of single-crystalline nanostructures prepared from solution-phase or vapor phase synthesis methods is extremely challenging due to multiple difficulties of spatial arrangement and control of crystallographic orientation. Herein, we introduce a nanotransplantation printing (NTPP) technique for the reliable fabrication, transfer, and arrangement of single-crystalline Si nanowires (NWs) on diverse substrates. NTPP entails (1) formation of nanoscale etch mask patterns on conventional low-cost Si via nanotransfer printing, (2) two-step combinatorial plasma etching for defining Si NWs, and (3) detachment and transfer of the NWs onto various receiver substrates using an infiltration-type polymeric transfer medium and a solvent-assisted adhesion switching mechanism. Using this approach, high-quality, highly ordered Si NWs can be formed on almost any type of surface including flexible plastic substrates, biological surfaces, and deep-trench structures. Moreover, NTPP provides controllability of the crystallographic orientation of NWs, which is confirmed by the successful generation of (100)- and (110)-oriented Si NWs with different properties. The outstanding electrical properties of the NWs were confirmed by fabricating and characterizing Schottky junction field-effect transistors. Furthermore, exploiting the highly flexible nature of the NWs, a high-performance piezoresistive strain sensor, with a high gauge factor over 200 was realized.
机译:由于空间排列的多次困难和结晶取向的控制,从溶液相或气相合成方法制备的高度有序的单晶纳米结构的制造非常具有挑战性。这里,我们引入了在不同基板上的可靠制造,转移和布置的纳米传感印刷(NTPP)技术。 NTPP在传统的低成本Si上形成(1)通过纳米转器印刷形成纳米级蚀刻掩模图案,(2)两步组合等离子体蚀刻,用于定义Si NWS,(3)使用(3)将NWS的分离和转移到各种接收器基板上使用渗透式聚合物转移介质和溶剂辅助粘合切换机构。使用这种方法,可以在几乎任何类型的表面上形成高质量的高度有序的Si NW,包括柔性塑料基板,生物表面和深沟结构。此外,NTPP提供了NWS的结晶取向的可控性,其通过成功产生(100) - 和(110)的SiNWS具有不同性质的成功。通过制造和表征肖特基结场效应晶体管来确认NWS的出色电性能。此外,利用NWS的高度灵活性,一种高性能压阻应变传感器,具有高于200倍的高表压因子。

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