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Thermal motion of a holographically trapped SPM-like probe

机译:全息捕获的类SPM探针的热运动

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摘要

By holding a complex object in multiple optical traps, it may be harmonically bound with respect to both its position and its orientation. In this way a small probe, or nanotool, can be manipulated in three dimensions and used to measure and apply directed forces, in the manner of a scanning probe microscope. In this paper we evaluate the thermal motion of such a probe held in holographic optical tweezers, by solving the Langevin equation for the general case of a set of spherical vertices linked by cylindrical rods. The concept of a corner frequency, familiar from the case of an optically trapped sphere, is appropriately extended to represent a set of characteristic frequencies given by the eigenvalues of the product of the stiffness matrix and the inverse hydrodynamic resistance matrix of the tool. These eigenvalues may alternatively be interpreted as inverses of a set of characteristic relaxation times for the system. The approach is illustrated by reference to a hypothetical tool consisting of a triangular arrangement of spheres with a lateral probe. The characteristic frequencies and theoretical resolution of the device are derived; variations of these quantities with tool size and orientation and with the optical power distribution, are also considered.
机译:通过将复杂的物体固定在多个光阱中,可以将其相对于其位置和方向进行谐波约束。以此方式,可以在三个维度上操纵小型探针或纳米工具,并以扫描探针显微镜的方式用于测量和施加定向力。在本文中,我们通过求解由圆柱杆连接的一组球状顶点的一般情况的Langevin方程,来评估这种全息全息镊子中所持探头的热运动。拐角频率的概念可以从光学陷阱球的情况中熟悉,可以适当地扩展以表示一组特征频率,这些特征频率由工具的刚度矩阵与反流体动力阻力矩阵乘积的特征值给出。这些特征值可以可替代地解释为系统的一组特征弛豫时间的倒数。通过参考假设的工具来说明该方法,该工具由球体的三角形排列和侧向探针组成。推导了器件的特征频率和理论分辨率。还考虑了这些量随工具尺寸和方向以及光功率分布的变化。

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