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局部表面等离子体共振峰的曲率

Curvature of the localized surface plasmon resonance peak.

作者信息

Chen Peng, Liedberg Bo

机构信息

Center for Biomimetic Sensor Science, 50 Nanyang Drive, Research Techno Plaza, Sixth Floor, Singapore 637553, Singapore.

出版信息

Anal Chem. 2014 Aug 5;86(15):7399-405. doi: 10.1021/ac500883x. Epub 2014 Jul 14.

Abstract

Localized surface plasmon resonance (LSPR) occurring in noble metal nanoparticles (e.g., Au) is a widely used phenomenon to report molecular interactions. Traditional LSPR sensors typically monitor shifts in the peak position or extinction in response to local refractive index changes in the close vicinity of the nanoparticle surface. The ability to resolve minute shifts/extinction changes is to a large extent limited by instrumental noise. A new strategy to evaluate LSPR responses utilizing changes in the shape of the extinction spectrum (the curvature) is proposed. The response of curvature to refractive index changes is investigated theoretically using Mie theory and an analytical expression relating the curvature to the refractive index is presented. The experimentally derived curvatures for 13 nm spherical gold nanoparticles (AuNPs) exposed to solvents with different bulk refractive indices confirm the theoretical predictions. Moreover, both the calculated and experimental findings suggest that the curvature is approximately a linear function of refractive index in regimes relevant to bio and chemical sensing. We demonstrate that curvature is superior over peak shift and extinction both in terms of signal-to-noise (S/N) ratio and reliability of LSPR sensors. With a curvature, one could readily monitor submonolayer adsorption of a low molecular weight thiol molecule (M(w) = 458.6) onto 13 nm AuNPs. It is also worthwhile mentioning that curvature is virtually insensitive to instrumental instabilities and artifacts occurring during measurement. Instabilities such as baseline tilt and shift, shift in peak position as well as sharp spikes/steps in the extinction spectra do not induce artifacts in the sensorgrams of curvature.

摘要

贵金属纳米颗粒(如金)中发生的局域表面等离子体共振(LSPR)是一种广泛用于报告分子相互作用的现象。传统的LSPR传感器通常监测峰值位置的移动或消光,以响应纳米颗粒表面附近局部折射率的变化。分辨微小移动/消光变化的能力在很大程度上受到仪器噪声的限制。本文提出了一种利用消光光谱形状变化(曲率)来评估LSPR响应的新策略。利用米氏理论从理论上研究了曲率对折射率变化的响应,并给出了曲率与折射率之间的解析表达式。对于暴露于具有不同体折射率的溶剂中的13 nm球形金纳米颗粒(AuNP),实验得出的曲率证实了理论预测。此外,计算结果和实验结果均表明,在与生物和化学传感相关的范围内,曲率近似为折射率的线性函数。我们证明,无论是在信噪比(S/N)还是在LSPR传感器的可靠性方面,曲率都优于峰值移动和消光。利用曲率,可以很容易地监测低分子量硫醇分子(M(w)=458.6)在13 nm AuNP上的亚单层吸附。还值得一提的是,曲率实际上对测量过程中出现的仪器不稳定性和伪像不敏感。诸如基线倾斜和偏移、峰值位置移动以及消光光谱中的尖锐尖峰/台阶等不稳定性不会在曲率传感图中产生伪像。

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