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A Simple Method to Disentangle Nanoparticle Optical Properties by Darkfield Microspectroscopy

机译:用暗场显微技术解聚纳米粒子光学特性的简单方法

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摘要

We present a darkfield optical microspectroscopy technique devoted to the disentangled measurement of the absorption and scattering cross sections of nanoparticle (NP) samples with variable concentration. The robustness of the method, including the needed instrumental calibrations, is examined in detail by analyzing and quantifying the major sources of statistic and systematic errors. As an exemplary case, results are presented on a gold NP colloid. The technique takes advantage of a simple inverted microscope, coupled with a spectrograph and equipped with a darkfield condenser and a variable numerical aperture objective to obtain spectra either in darkfield or brightfield optical configurations. By adopting the Lambert– Beer (LB) equation modeling, we were able to disentangle and measure with a single setup the absorption, scattering, and extinction coefficients of the same sample by combining three spectra, obtained by opportunely varying the objective numerical aperture. Typical plasmonic resonances were recognized at approximately 520 and 750 nm. Optical coefficients were measured as a function of particle number density (0.04–3.94 μm~(-3), corresponding to 40 μM–4 mM nominal Au concentration) and good linearity was verified up to ~1.5 mm~(-3) (~1 mM Au). Moreover, extinction and scattering cross sections were quantified and the validity of the LB approximation was reviewed. Besides its applications to plasmonic NPs, this method may be appropriate for any colloid, provided there exists a characteristic spectral feature in the ultraviolet-visible-near infrared range. This technique may be exploited to localize NPs in biological samples.
机译:我们提出了一种暗场光学显微技术,致力于分散测量浓度可变的纳米颗粒(NP)样品的吸收和散射截面。通过分析和量化统计和系统误差的主要来源,详细检查了该方法的鲁棒性,包括所需的仪器校准。作为示例性情况,结果显示在金NP胶体上。该技术利用简单的倒置显微镜,光谱仪,暗场聚光镜和可变数值孔径物镜的优势来获得暗场或明场光学配置的光谱。通过采用Lambert–Beer(LB)方程模型,我们可以通过适当改变客观数值孔径获得的三个光谱,通过单一设置解开并测量同一样品的吸收,散射和消光系数。在约520和750 nm处识别出典型的等离子体共振。测得的光学系数是颗粒数密度的函数(0.04–3.94μm〜(-3),对应于40 μM–4 mM的标称Au浓度),并且在〜1.5 mm〜(-3)范围内都具有良好的线性(〜 1 mM金)。此外,对消光和散射截面进行了定量,并回顾了LB近似的有效性。除了在等离子NP上的应用外,此方法还可能适用于任何胶体,只要在紫外可见-近红外范围内具有特征光谱特征即可。可以利用该技术来定位生物样品中的NP。

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