Liang S, Medich D, Czajkowsky DM, Sheng S, Yuan JY, Shao Z
NASA Ames Research Center, Moffett Field, CA 94035, USA.
Ultramicroscopy. 2000 Jul;84(1-2):119-25. doi: 10.1016/s0304-3991(00)00039-5.
We show that the thermal fluctuations of very soft mechanical oscillators, such as the cantilever in an atomic force microscope (AFM), can be reduced without changing the stiffness of the spring or having to lower the environment temperature. We derive a theoretical relationship between the thermal fluctuations of an oscillator and an actively controlled external dissipative force. This relationship is verified by experiments with an AFM cantilever where the external active force is coupled through a magnetic field. With simple instrumentation, we have reduced the thermal noise amplitude of the cantilever by a factor of 3.4, achieving an apparent temperature of 25 K with the environment at 295 K. This active noise reduction approach can significantly improve the accuracy of static position or static force measurements in a number of practical applications.
我们表明,对于非常柔软的机械振荡器,如原子力显微镜(AFM)中的悬臂梁,其热涨落可以在不改变弹簧刚度或无需降低环境温度的情况下得以减小。我们推导出了振荡器热涨落与主动控制的外部耗散力之间的理论关系。这种关系通过对AFM悬臂梁的实验得到了验证,其中外部主动力通过磁场进行耦合。借助简单的仪器,我们已将悬臂梁的热噪声幅度降低了3.4倍,在环境温度为295K时实现了表观温度为25K。这种主动降噪方法能够在许多实际应用中显著提高静态位置或静态力测量的精度。