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Nanosphere Lithography: Self-Assembled Photonic and Magnetic Materials

机译:纳米球光刻:自组装的光子和磁性材料

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摘要

Early work with size-tunable periodic particle arrays (PPAs) fabricated by nanosphere lithography (NSL) demonstrated that the localized surface plasmon resonance (LSPR) could be tuned throughout the visible region of the spectrum. Further developments of the NSL technique have produced a myriad of nanoparticle configurations. Presented in this paper are several array types and examples of their utility in current applications. Both the sensitivity and tunability of the LSPR have been firmly established using single layer PPAs. Magnetic force microscopy (MFM) has been used to show that double layer PPAs act as single domain magnets and give strong MFM contrast. Angle-resolved NSL has produced nanogap and nano-overlap structures with manipulation resolution of one nanometer. Nanowell structures extend the original two-dimensional structure into the third dimension. Exploitation of this flexible, materials-general NSL technique allows for investigation of the catalytic, electrochemical, magnetic, optical and thermodynamic properties of nanoparticles.
机译:纳米球光刻(NSL)制备的尺寸可调周期性粒子阵列(PPA)的早期工作表明,可以在光谱的整个可见区域内调节局部表面等离子体共振(LSPR)。 NSL技术的进一步发展已经产生了无数的纳米颗粒结构。本文介绍了几种数组类型及其在当前应用中的效用示例。 LSPR的灵敏度和可调性已使用单层PPA牢固建立。磁力显微镜(MFM)已用于显示双层PPA充当单畴磁体,并具有很强的MFM对比度。角度分辨的NSL已产生具有1纳米操纵分辨率的纳米间隙和纳米重叠结构。纳米孔结构将原始的二维结构扩展到三维。利用这种灵活的,材料通用的NSL技术可以研究纳米颗粒的催化,电化学,磁性,光学和热力学性质。

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