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用于等离子体增强生物传感的贵金属纳米颗粒簇阵列的设计与实现

Design and Implementation of Noble Metal Nanoparticle Cluster Arrays for Plasmon Enhanced Biosensing.

作者信息

Yan Bo, Boriskina Svetlana V, Reinhard Björn M

机构信息

Department of Chemistry and The Photonics Center, Boston University, Boston, MA 02215.

出版信息

J Phys Chem C Nanomater Interfaces. 2011 Dec 20;115(50):24437-24453. doi: 10.1021/jp207821t.

Abstract

Nanoparticle Cluster Arrays (NCAs) are a class of electromagnetic materials that comprise chemically defined nanoparticles assembled into clusters of defined size in an extended deterministic arrangement. NCAs are fabricated through integration of chemically synthesized building blocks into predefined patterns using a hybrid top-down/bottom-up fabrication approach that overcomes some of the limitations of conventional top-down fabrication methods with regard to minimum available feature size and structural complexity. NCAs can sustain near-field interactions between nanoparticles within individual clusters as well as between entire neighboring clusters. The availability of near-field interactions on multiple length scales - together with the ability to further enhance the coupled plasmon modes through photonic modes in carefully designed array morphologies - leads to a multiscale cascade electromagnetic field enhancement throughout the array. This feature article introduces the design and fabrication fundamentals of NCAs and characterizes the electromagnetic coupling mechanisms in the arrays. Furthermore, it reviews how the optical properties of NCAs can be tuned through the size and shape of the nanoparticle building blocks and the geometry, size, and separation of the assembled clusters. NCAs have potential applications in many different areas; this feature article focuses on plasmon enhanced biosensing and surface enhanced Raman spectroscopy (SERS), in particular.

摘要

纳米颗粒簇阵列(NCAs)是一类电磁材料,由化学定义的纳米颗粒组成,这些纳米颗粒以扩展的确定性排列方式组装成特定尺寸的簇。NCAs是通过将化学合成的构建块集成到预定义图案中制造的,采用了一种自上而下/自下而上的混合制造方法,克服了传统自上而下制造方法在最小可用特征尺寸和结构复杂性方面的一些限制。NCAs可以维持单个簇内纳米颗粒之间以及整个相邻簇之间的近场相互作用。多个长度尺度上近场相互作用的存在——以及通过精心设计的阵列形态中的光子模式进一步增强耦合等离子体模式的能力——导致整个阵列中出现多尺度级联电磁场增强。这篇专题文章介绍了NCAs的设计和制造基础,并描述了阵列中的电磁耦合机制。此外,它还回顾了如何通过纳米颗粒构建块的尺寸和形状以及组装簇的几何形状、尺寸和间距来调节NCAs的光学性质。NCAs在许多不同领域都有潜在应用;这篇专题文章尤其关注等离子体增强生物传感和表面增强拉曼光谱(SERS)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c5d7/3268044/d8fac32348a7/nihms334886f1.jpg

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