Li Y, Ng H W, Gates B D, Menon C
MENRVA Research Group, School of Engineering Science, Simon Fraser University, 8888 University Drive, Burnaby, BC V5A 1S6, Canada.
Nanotechnology. 2014 Jul 18;25(28):285303. doi: 10.1088/0957-4484/25/28/285303. Epub 2014 Jun 27.
Arrays of high aspect-ratio (AR) nano-pillars have attracted a lot of interest for various applications, such as for use in solar cells, surface acoustic sensors, tissue engineering, bio-inspired adhesives and anti-reflective surfaces. Each application may require a different structural material, which can vary in the required chemical composition and mechanical properties. In this paper, a low cost fabrication procedure is proposed for large scale, high AR and high density arrays of nano-pillars. The proposed method enables the replication of a master with high fidelity, using the subsequent replica molds multiple times, and preparing arrays of nano-pillars in a variety of different materials. As an example applied to bio-inspired dry adhesion, polymeric arrays of nano-pillars are prepared in this work. Thermoset and thermoplastic nano-pillar arrays are examined using an atomic force microscope to assess their adhesion strength and its uniformity. Results indicate the proposed method is robust and can be used to reliably prepare nano-structures with a high AR.
高纵横比(AR)纳米柱阵列因其在各种应用中的表现而备受关注,例如用于太阳能电池、表面声学传感器、组织工程、仿生粘合剂和抗反射表面。每种应用可能需要不同的结构材料,其化学成分和机械性能要求也可能不同。本文提出了一种低成本的制造工艺,用于大规模、高纵横比和高密度的纳米柱阵列。所提出的方法能够高保真地复制母模,多次使用后续的复制模具,并制备各种不同材料的纳米柱阵列。作为应用于仿生干粘附的一个例子,本文制备了聚合物纳米柱阵列。使用原子力显微镜检查热固性和热塑性纳米柱阵列,以评估它们的粘附强度及其均匀性。结果表明,所提出的方法是可靠的,可用于可靠地制备具有高纵横比的纳米结构。