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Large-Scale Fabrication of Three-Dimensional Surface Patterns Using Template-Defined Electrochemical Deposition

机译:使用模板定义的电化学沉积大规模制造三维表面图案

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摘要

A new strategy to achieve large-scale, three-dimensional (3D) micro- and nanostructured surface patterns through selective electrochemical growth on monolayer colloidal crystal (MCC) templates is reported. This method can effectively create large-area (>1 cm~2), 3D surface patterns with well-defined structures in a cost-effective and time-saving manner (<30 min). A variety of 3D surface patterns, including semishells, Janus particles, microcups, and mushroom-like clusters, is generated. Most importantly, our method can be used to prepare surface patterns with prescribed compositions, such as metals, metal oxides, organic materials, or composites (e.g., metal/metal oxide, metal/polymer). The 3D surface patterns produced by our method can be valuable in a wide range of applications, such as biosensing, data storage, and plasmonics. In a proof-of-concept study, we investigated, both experimentally and theoretically, the surface-enhanced Raman scattering (SERS) performance of the fabricated silver 3D semishell arrays.
机译:报道了一种通过在单层胶体晶体(MCC)模板上进行选择性电化学生长来实现大规模,三维(3D)微米和纳米结构表面图案的新策略。该方法可以以经济高效且省时的方式(<30分钟)有效地创建具有定义明确的结构的大面积(> 1 cm〜2)3D表面图案。生成了各种3D表面图案,包括半壳,Janus颗粒,微杯和类似蘑菇的簇。最重要的是,我们的方法可用于制备具有规定成分的表面图案,例如金属,金属氧化物,有机材料或复合材料(例如金属/金属氧化物,金属/聚合物)。通过我们的方法产生的3D表面图案在广泛的应用中可能有价值,例如生物传感,数据存储和等离激元。在概念验证研究中,我们在实验和理论上研究了制成的3D银半壳阵列的表面增强拉曼散射(SERS)性能。

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  • 来源
    《Advanced Functional Materials》 |2013年第6期|720-730|共11页
  • 作者单位

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    School of Materials Science and Engineering University of Jinan Jinan 250022, China;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

    School of Materials Science and Engineering Guangxi University Nanning 530004, China;

    Ascent Bio-Nano Technologies Inc., State College, PA 16801, USA;

    Center for Innovation Competence & Institute for Physics Technical University of Ilmenau 98693 Ilmenau, Germany;

    Department of Engineering Science and Mechanics The Pennsylvania State University University Park, PA 16802-6812, USA;

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