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Photothermal excitation of microcantilevers in liquid: effect of the excitation laser position on temperature and vibrational amplitude

机译:液体中微悬臂梁的光热激发:激发激光位置对温度和振动幅度的影响

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摘要

Demands to improve the sensitivity and measurement speed of dynamic scanning force microscopy and cantilever sensing applications necessitate the development of smaller cantilever sensors. As a result, methods to directly drive cantilevers, such as photothermal or magnetic excitation, are gaining in importance. Presented is a report on the effect of photothermal excitation of microcantilevers on the increase in steady-state temperature and the dynamics of higher mode vibrations. First, the local temperature increase upon continuous irradiation with laser light at different positions along the cantilever was measured and compared with finite element analysis data. The temperature increase was highest when the heating laser was positioned at the free end of the cantilever. Next, the laser intensity was modulated to drive higher flexural modes to resonance. The dependence of the cantilever dynamics on the excitation laser position was assessed and was in good agreement with the analytical expressions. An optimal position to simultaneously excite all flexural modes of vibration with negligible heating was found at the clamped end of the cantilever. The reports findings are essential for optimisation of the excitation efficiency to minimise the rise in temperature and avoid damaging delicate samples or functionalisation layers.
机译:为了提高动态扫描力显微镜和悬臂传感应用的灵敏度和测量速度的要求,有必要开发更小的悬臂传感器。结果,直接驱动悬臂的方法,例如光热或磁激励,变得越来越重要。提出了关于微悬臂梁的光热激发对稳态温度升高和高模振动动力学的影响的报告。首先,测量沿悬臂的不同位置连续照射激光时的局部温度升高,并将其与有限元分析数据进行比较。当加热激光器位于悬臂的自由端时,温度升高最高。接下来,调制激光强度以驱动更高的弯曲模式产生共振。评估了悬臂动力学对激发激光位置的依赖性,并与解析表达式很好地吻合。在悬臂的夹紧端发现了同时激发所有弯曲模式振动和可忽略的热量的最佳位置。该报告的发现对于优化激发效率以最小化温度升高并避免损坏精密的样品或功能化层至关重要。

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