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Advanced wide-field surface plasmon microscopy of single adsorbing nanoparticles

机译:单吸附纳米粒子的先进宽场表面等离子体显微镜

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In-situ detection and characterization of nanoparticles in biological media as well as in food or other complex samples is still a big challenge for existing analytical methods. Here we describe a label-free and cost-effective analytical method for detection of nanoparticles in the concentration range 10~6-10~(10) NPs/ml. The proposed method is based on the surface plasmon resonance microscopy (SPRM) with a large field of view (~1.3mm~2). It is able to detect and count adsorbing nanoparticles individually, totally up to the hundreds of thousands of NPs on the sensor surface. At constant diffusion conditions the detection rate is proportional to the number concentration of NPs, this provides an approach to determine the NPs concentration. The adsorption of nanoparticle can be manipulated by the surface functionalization, pH and electrolyte concentration of suspensions. Images of detected nanoparticles can be quantified in order to characterize them individually. The image intensity grows quasi-linearly with nanoparticle size for the given material. However, the size and material of nanoparticle cannot be resolved directly from the image. For determination of chemical composition, SPRM can be assisted by electrochemical analysis. In this case, the gold sensor surface is used both as a resonant media for plasmon microscopy and as a working electrode. Under potential sweep, the adsorbed NPs can be subjected to electrochemical dissolution, which is detected optically. The potential of this conversion characterizes the material of NPs.
机译:原位检测和表征生物培养基中的纳米颗粒以及食物或其他复杂样品仍然是现有分析方法的重要挑战。在这里,我们描述了一种无标记且经济高效的分析方法,用于检测浓度范围内的纳米颗粒10〜6-10〜(10)NPS / mL。该方法基于表面等离子体共振显微镜(SPRM),具有大视野(〜1.3mm〜2)。它能够单独检测和计数吸附纳米粒子,在传感器表面上完全高达数十万个NP。在恒定扩散条件下,检测速率与NP的数量成比例,这提供了确定NPS浓度的方法。可以通过表面官能化,pH和电解质浓度的悬浮液来操纵纳米颗粒的吸附。可以量化检测到的纳米颗粒的图像,以便单独表征它们。图像强度与给定材料的纳米颗粒尺寸增加了准线性。然而,纳米粒子的尺寸和材料不能直接从图像中解析。为了测定化学成分,可以通过电化学分析辅助SPRM。在这种情况下,金传感器表面作为等离子体显微镜和作为工作电极的共振介质。在电位扫描下,吸附的NPS可以进行电化学溶解,这是光学检测的电化学溶解。该转换的潜力表征了NP的材料。

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