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The optical nanosizer - quantitative size and shape analysis of individual nanoparticles by high-throughput widefield extinction microscopy

机译:光学纳米尺度——定量的大小和分析单个纳米粒子的形状高通量灭绝宽视野显微镜

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Nanoparticles are widely utilised for a range of applications, from catalysis to medicine, requiring accurate knowledge of their size and shape. Current techniques for particle characterisation are either not very accurate or time consuming and expensive. Here we demonstrate a rapid and quantitative method for particle analysis based on measuring the polarisation-resolved optical extinction cross-section of hundreds of individual nanoparticles using wide-field microscopy, and determining the particle size and shape from the optical properties. We show measurements on three samples consisting of nominally spherical gold nanoparticles of 20 nm and 30 nm diameter, and gold nanorods of 30 nm length and 10 nm diameter. Nanoparticle sizes and shapes in three dimensions are deduced from the measured optical cross-sections at different wavelengths and light polarisation, by solving the inverse problem, using an ellipsoid model of the particle polarisability in the dipole limit. The sensitivity of the method depends on the experimental noise and the choice of wavelengths. We show an uncertainty down to about 1 nm in mean diameter, and 10% in aspect ratio when using two or three color channels, for a noise of about 50 nm(2)in the measured cross-section. The results are in good agreement with transmission electron microscopy, both 2D projection and tomography, of the same sample batches. Owing to its combination of experimental simplicity, ease of access to statistics over many particles, accuracy, and geometrical particle characterisation in 3D, this "optical nanosizer" method has the potential to become the technique of choice for quality control in next-generation particle manufacturing.
机译:纳米粒子被广泛利用的范围应用程序,从催化到医学,要求他们的大小和准确的知识形状。描述不是很准确的或耗时和昂贵的。粒子的快速和定量方法根据测量分析polarisation-resolved光学灭绝横截面的数百人使用大视场显微镜纳米颗粒,并确定粒子的大小和形状光学性质。样品组成的名义上的球形金纳米粒子的20和30 nm直径,金纳米棒30 nm的长度和10 nm直径。在三维空间中纳米颗粒大小和形状从测量光学推导出吗在不同的波长,光截面两极分化,通过求解逆问题,使用一个椭球粒子的模型偶极子的极化率限制。取决于灵敏度的方法实验噪音和波长的选择。我们展示的不确定性降低到约1海里的意思直径,使用两个时,比例为10%或三个颜色通道噪声约50纳米测量截面(2)。是在良好的协议与透射电子吗显微镜、二维投影和断层同一批次样品。实验简单,易于访问统计在许多粒子、准确性和在3 d几何粒子描述,这个“光学计算”方法有潜力成为首选的技术质量控制在下一代粒子制造业。

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