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Uniform metal nanostructures with long-range order via three-step hierarchical self-assembly

机译:通过三步分层自组装获得具有长程有序的均匀金属纳米结构

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摘要

Large-scale nanopatterning is a major issue in nanoscience and nanotechnology, but conventional top-down approaches are challenging because of instrumentation and process complexity while often lacking the desired spatial resolution. We present a hierarchical bottom-up nanopatterning routine using exclusively self-assembly processes: By combining crystal surface reconstruction, microphase separation of copolymers, and selective metal diffusion, we produce monodisperse metal nanostructures in highly regular arrays covering areas of square centimeters. In situ grazing incidence small-angle x-ray scattering during Fe nanostructure formation evidences an outstanding structural order in the self-assembling system and hints at the possibility of sculpting nanostructures using external process parameters. Thus, we demonstrate that bottom-up nanopatterning is a competitive alternative to top-down routines, achieving comparable pattern regularity, feature size, and patterned areas with considerably reduced effort. Intriguing assets of the proposed fabrication approach include the option for in situ investigations during pattern formation, the possibility of customizing the nanostructure morphology, the capacity to pattern arbitrarily large areas with ultrahigh structure densities unachievable by top-down approaches, and the potential to address the nanostructures individually. Numerous applications of self-assembled nanostructure patterns can be envisioned, for example, in high-density magnetic data storage, in functional nanostructured materials for photonics or catalysis, or in surface plasmon resonance–based sensing.
机译:大规模纳米图案化是纳米科学和纳米技术中的一个主要问题,但是传统的自上而下的方法具有挑战性,因为仪器和工艺复杂,同时通常缺乏所需的空间分辨率。我们提出了一种仅使用自组装过程的自下而上的分层纳米图案制作程序:通过结合晶体表面重建,共聚物的微相分离和选择性金属扩散,我们以覆盖正方形区域的高度规则阵列产生单分散金属纳米结构。在铁纳米结构形成过程中,原位掠入射的小角度X射线散射证明了自组装系统中出色的结构顺序,并暗示了使用外部工艺参数雕刻纳米结构的可能性。因此,我们证明了自下而上的纳米图案是自上而下的例程的一种竞争替代方法,可以以相当可观的工作量实现相当的图案规则性,特征尺寸和图案区域。拟议的制造方法的有趣资产包括:在图案形成过程中进行原位研究的选项,定制纳米结构形态的可能性,以自顶向下的方法无法实现的具有超高结构密度的任意大面积图案化的能力以及解决该问题的潜力。纳米结构。自组装纳米结构图案的大量应用可以被设想,例如,在高密度磁数据存储,用于光子学或催化的功能性纳米结构材料中,或在基于表面等离子体共振的传感中。

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