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Three-dimensional motion detection of a sub-50 nm gold nanoparticle

机译:亚50nm金纳米粒子的三维运动检测

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We demonstrated three-dimensional position measurements of a gold nanoparticle using an in-line low-coherence digital holographic microscope with twilight-field method (TFM) and a regulation of temporal coherence of light source. An intensity of scattering light from a nanoparticle is very weak, and therefore, in order to get interference fringes with higher contrast, the TFM regulates only an intensity of the reference light to be close to an intensity of the object light using a low-frequency attenuation filter in the in-line digital holographic microscope. Coherence of light relates to get interference fringes with higher contrast on a wide aria. High coherence makes a lot of undesired coherent noises, therefore the fringes derived from nanoparticles is masked by them. Too low coherence makes fringes with low contrast and corresponding low signal-to-noise ratio. Consequently an adequate regulation of the coherence of light source gives the best performance in the position measurements. Uses of these methods allowed us to reach the minimum diameter of 20 nm in the position measurement of a gold nanoparticle.
机译:我们使用直列的低相干数字全息显微镜和光源的时间相干调节,展示了金纳米粒子的三维位置测量。来自纳米颗粒的散射光的强度非常弱,因此,为了获得更高的对比度的干涉条纹,TFM仅调节参考光的强度,以使用低频靠近物体光的强度在线数字全息显微镜中的衰减滤波器。光的一致性涉及在宽咏叹调上获得具有更高对比度的干扰条纹。高相干使得很多不期望的相干噪声,因此由它们掩盖源自纳米颗粒的条纹。太低的相干性使得具有低对比度和相应的低信噪比的条纹。因此,对光源相干性的充分调节在位置测量中具有最佳性能。这些方法的用途使我们可以在金纳米粒子的位置测量中达到20nm的最小直径。

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