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Double Optical Tweezers for 3D Photonic Force Measurements of Mie Scatterers

机译:用于米氏散射体3D光子力测量的双光镊

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The ability to observe quantitatively mechanical events in real time of biological phenomena is an important contribution of the Optical Tweezers technique for life sciences. The measurements of any mechanical property involves force measurements, usually performed using a microsphere as the force transducer. This makes the understanding of the photonic force theory critical. Only very sensitive and precise experimental 3D photonic force measurements for any particle size will be able to discriminate between different theoretical models. In particular it is important to obtain the whole photonic force curve as a function of the beam position instead of isolate particular points. We used a dual trap in an upright standard optical microscope, one to keep the particle at the equilibrium position and the other to disturb it. With this system we have been able to obtain these force curves as a function of x, y and z position, incident beam polarization and wavelength. We investigated the optical forces for wavelengths in and out of Mie resonances of dielectric microspherical cavities for both TM and TE modes and compared the experimental results with the calculations performed with different models for the optical force.
机译:实时观察生物现象的机械事件的能力是光学镊子技术对生命科学的重要贡献。任何机械性能的测量都涉及力测量,通常使用微球作为力传感器进行测量。这使得对光子力理论的理解变得至关重要。对于任何粒径,只有非常灵敏和精确的实验3D光子力测量值才能区分不同的理论模型。特别重要的是,获得整个光子力曲线作为光束位置的函数,而不是隔离特定点。我们在直立的标准光学显微镜中使用了一个双阱,一个用于将粒子保持在平衡位置,另一个则将其干扰。使用该系统,我们已经能够获得这些力曲线,它们是x,y和z位置,入射光束偏振和波长的函数。我们针对TM和TE模式研究了介电微球腔Mie共振中和外的波长的光学力,并将实验结果与针对不同光学力模型进行的计算进行了比较。

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