Institut Néel, Université Grenoble Alpes - CNRS:UPR2940, 38042, Grenoble, France.
Nat Commun. 2018 Apr 11;9(1):1401. doi: 10.1038/s41467-018-03741-8.
Thermal motion of nanomechanical probes directly impacts their sensitivities to external forces. Its proper understanding is therefore critical for ultimate force sensing. Here, we investigate a vectorial force field sensor: a singly-clamped nanowire oscillating along two quasi-frequency-degenerate transverse directions. Its insertion in a rotational optical force field couples its eigenmodes non-symmetrically, causing dramatic modifications of its mechanical properties. In particular, the eigenmodes lose their intrinsic orthogonality. We show that this circumstance is at the origin of an anomalous excess of noise and of a violation of the fluctuation dissipation relation. Our model, which quantitatively accounts for all observations, provides a novel modified version of the fluctuation dissipation theorem that remains valid in non-conservative rotational force fields, and that reveals the prominent role of non-axial mechanical susceptibilities. These findings help understand the intriguing properties of thermal fluctuations in non-reciprocally-coupled multimode systems.
纳米机械探针的热运动直接影响它们对外力的敏感程度。因此,正确理解热运动对于最终的力传感至关重要。在这里,我们研究了一种向量力场传感器:一个沿两个准简并横向方向振动的单端固定纳米线。它插入旋转光学力场中会非对称地耦合其本征模式,导致其机械性能发生剧烈变化。特别是,本征模式失去了内在的正交性。我们表明,这种情况是噪声异常增加和涨落耗散关系被违反的根源。我们的模型定量地解释了所有的观察结果,提供了一种新的波动耗散定理的修正版本,该版本在非保守旋转力场中仍然有效,并揭示了非轴向机械灵敏度的突出作用。这些发现有助于理解非互易耦合多模系统中热涨落的有趣性质。