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Electrostatically actuated encased cantilevers

机译:静电驱动的悬臂

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摘要

>Background: Encased cantilevers are novel force sensors that overcome major limitations of liquid scanning probe microscopy. By trapping air inside an encasement around the cantilever, they provide low damping and maintain high resonance frequencies for exquisitely low tip–sample interaction forces even when immersed in a viscous fluid. Quantitative measurements of stiffness, energy dissipation and tip–sample interactions using dynamic force sensors remain challenging due to spurious resonances of the system. >Results: We demonstrate for the first time electrostatic actuation with a built-in electrode. Solely actuating the cantilever results in a frequency response free of spurious peaks. We analyze static, harmonic, and sub-harmonic actuation modes. Sub-harmonic mode results in stable amplitudes unaffected by potential offsets or fluctuations of the electrical surface potential. We present a simple plate capacitor model to describe the electrostatic actuation. The predicted deflection and amplitudes match experimental results within a few percent. Consequently, target amplitudes can be set by the drive voltage without requiring calibration of optical lever sensitivity. Furthermore, the excitation bandwidth outperforms most other excitation methods. >Conclusion: Compatible with any instrument using optical beam deflection detection electrostatic actuation in encased cantilevers combines ultra-low force noise with clean and stable excitation well-suited for quantitative measurements in liquid, compatible with air, or vacuum environments.
机译:>背景:包裹式悬臂是新颖的力传感器,它克服了液体扫描探针显微镜的主要局限性。通过将空气滞留在悬臂周围的外壳内,它们即使在浸入粘性流体中时也能提供较低的阻尼并维持较高的共振频率,以实现极低的尖端与样品之间的相互作用力。由于系统的虚假共振,使用动态力传感器对刚度,能量耗散和尖端与样品之间的相互作用进行定量测量仍然具有挑战性。 >结果:我们首次展示了内置电极的静电致动。单独驱动悬臂可产生无虚假峰值的频率响应。我们分析了静态,谐波和次谐波驱动模式。次谐波模式可产生稳定的振幅,不受振幅或表面电势波动的影响。我们提出了一个简单的平板电容器模型来描述静电驱动。预测的挠度和振幅在百分之几以内与实验结果相匹配。因此,可以通过驱动电压设置目标幅度,而无需校准光杆灵敏度。此外,激励带宽优于大多数其他激励方法。 >结论:与任何在封闭式悬臂中使用光束偏转检测静电致动的仪器兼容,结合了超低作用力噪声和干净稳定的激励,非常适合在液体中定量测量,与空气或真空环境兼容。

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