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大面积原子级平整的单晶金纳米三角阵列直接在基底表面形成。

Large-Area Periodic Arrays of Atomically Flat Single-Crystal Gold Nanotriangles Formed Directly on Substrate Surfaces.

机构信息

College of Engineering, University of Notre Dame, Notre Dame, IN, 46556, USA.

Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, IN, 46556, USA.

出版信息

Small. 2022 Dec;18(52):e2205780. doi: 10.1002/smll.202205780. Epub 2022 Nov 7.

Abstract

The advancement of nanoenabled wafer-based devices requires the establishment of core competencies related to the deterministic positioning of nanometric building blocks over large areas. Within this realm, plasmonic single-crystal gold nanotriangles represent one of the most attractive nanoscale components but where the formation of addressable arrays at scale has heretofore proven impracticable. Herein, a benchtop process is presented for the formation of large-area periodic arrays of gold nanotriangles. The devised growth pathway sees the formation of an array of defect-laden seeds using lithographic and vapor-phase assembly processes followed by their placement in a growth solution promoting planar growth and threefold symmetric side-faceting. The nanotriangles formed in this high-yield synthesis distinguish themselves in that they are epitaxially aligned with the underlying substrate, grown to thicknesses that are not readily obtainable in colloidal syntheses, and present atomically flat pristine surfaces exhibiting gold atoms with a close-packed structure. As such, they express crisp and unambiguous plasmonic modes and form photoactive surfaces with highly tunable and readily modeled plasmon resonances. The devised methods, hence, advance the integration of single-crystal gold nanotriangles into device platforms and provide an overall fabrication strategy that is adaptable to other nanomaterials.

摘要

纳米增强晶圆器件的发展需要建立与纳米级构建块在大面积上的确定性定位相关的核心能力。在这一领域中,等离子体单晶金纳米三角形是最具吸引力的纳米级组件之一,但迄今为止,在大规模上形成可寻址的阵列一直是不切实际的。本文提出了一种在大面积上形成金纳米三角形周期性阵列的台式工艺。所设计的生长途径是使用光刻和气相组装工艺形成一系列带有缺陷的种子,然后将它们放置在促进平面生长和三倍对称侧面形成的生长溶液中。这种高产率合成形成的纳米三角形的特点是它们与下面的衬底外延对齐,生长到在胶体合成中不易获得的厚度,并呈现出原子级平坦的原始表面,具有紧密堆积结构的金原子。因此,它们表现出鲜明而明确的等离子体模式,并形成具有高度可调谐和易于建模的等离子体共振的光活性表面。因此,所提出的方法将单晶金纳米三角形集成到器件平台中,并提供了一种适用于其他纳米材料的整体制造策略。

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