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通过胶体光刻和薄膜转移相结合制备的具有表面等离子体共振的超薄悬浮纳米孔。

Ultrathin suspended nanopores with surface plasmon resonance fabricated by combined colloidal lithography and film transfer.

作者信息

Junesch Juliane, Sannomiya Takumi

机构信息

Institute of Biomedical Engineering, ETH Zürich , Gloriastrasse 35, 8092, Zürich, Switzerland.

出版信息

ACS Appl Mater Interfaces. 2014 May 14;6(9):6322-31. doi: 10.1021/am405443y. Epub 2014 Apr 18.

Abstract

Suspended plasmonic nanopores in ultrathin film layers were fabricated through a simple and widely applicable method combining colloidal lithography and thin film transfer, which allows mass production of short-range ordered nanopore arrays on a large scale. By this combined method, mechanically stable and flexible free-standing nanopore membranes with a thickness down to 15-30 nm were produced. The plasmon resonances of the ultrathin plasmonic nanopores fabricated in AlN/Au/AlN trilayer and single layer Au membranes were tuned to lie in the vis-NIR wavelength range by properly designing their dimensions. The optical responses to the refractive index changes were tested and applied to adlayer sensing. The trilayer nanopore membrane showed a unique property to support water only on one side of the membrane, which was confirmed by the resonance shift and comparison with numerical simulation. Pore size reduction down to 10 nm can be achieved through additional material deposition. The filtering function of such pore-size-reduced conical shaped nanofunnels has also been demonstrated. The presented nanopore fabrication method offers new platforms for ultrathin nanopore sensing or filtering devices with controlled pore-size and optical properties. The film transfer technique employed in this work would enable the transformation of any substrate-based nanostructures to free-standing membrane based devices without complicated multiple etching processes.

摘要

通过结合胶体光刻和薄膜转移的简单且广泛适用的方法,在超薄膜层中制备了悬浮的等离子体纳米孔,这使得能够大规模批量生产短程有序纳米孔阵列。通过这种组合方法,制备出了厚度低至15 - 30 nm的机械稳定且灵活的独立纳米孔膜。通过适当设计其尺寸,将在AlN/Au/AlN三层膜和单层Au膜中制备的超薄等离子体纳米孔的等离子体共振调谐到可见光 - 近红外波长范围。测试了对折射率变化的光学响应并将其应用于吸附层传感。三层纳米孔膜表现出仅在膜的一侧支撑水的独特性质,这通过共振位移以及与数值模拟的比较得到证实。通过额外的材料沉积可以实现孔径减小至10 nm。还展示了这种孔径减小的锥形纳米通道的过滤功能。所提出的纳米孔制造方法为具有可控孔径和光学性质的超薄纳米孔传感或过滤装置提供了新平台。本工作中采用的薄膜转移技术将使任何基于衬底的纳米结构转变为基于独立膜的器件,而无需复杂的多次蚀刻工艺。

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