首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part K, Journal of Multi-body Dynamics >Effects of laser spot positioning with optical beam deflection method on tapping mode and bimodal AFM
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Effects of laser spot positioning with optical beam deflection method on tapping mode and bimodal AFM

机译:光束偏转法对攻丝模式和双峰AFM的激光点定位的影响

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This work focuses on the importance of laser location and its effect on contact mode, tapping mode, and bimodal AFM both theoretically and experimentally. It is found that the current guidelines in the field might lead to mischaracterization of matter especially in bimodal AFM. A numerical study is done for a cantilever with its tip located at the end while interacting with two different polymers of Polystyrene (PS) and Low-density polyethylene (LDPE). Different observables are recorded at the end of the cantilever, 80% of its length, and 60% of its length. These results are verified by experiments in contact mode, tapping mode and bimodal AFM. Bimodal AFM observables are converted to energy quantities (i.e., virial and dissipated power) which are used to characterize soft matter in this field. Similar to simulation, for each of these measurements three different laser locations are selected. Finally, it is found there are certain locations on the cantilever that should be avoided for placing the laser while exciting higher eigenmodes. Hence, locating the laser around 80% of its length while performing bimodal AFM with the first and second eigenmodes on polymer surfaces can decrease phase contrast. It is concluded that: (1) contact mode AFM on stiff surfaces might not be effected by change of laser location, (2) misalignment of laser can cause up to 40% of mischaracterization in tapping mode and (3) 10% of phase contrast reduction in addition to 20% percent of reduction in amplitude oscillations in bimodal AFM. It is shown this can lead to mischaracterization of material. By positioning the laser location closer to the clamped end of the cantilever, surface indentation can occur. Although this is considered as a surface damage in soft matter imaging, it can be considered as a new capability of multifrequency AFM for surface modification.
机译:这项工作侧重于理论上和实验上的激光位置及其对接触模式,攻丝模式和双峰AFM的影响。结果发现,田间的当前指南可能导致物质的错误组织,尤其是双峰AFM。对于悬臂进行了数值研究,其尖端位于末端,同时与两种不同聚苯乙烯(PS)和低密度聚乙烯(LDPE)的不同聚合物相互作用。在悬臂的末端记录不同的观察到,其长度的80%,其长度的60%。这些结果通过在接触模式,攻丝模式和双峰AFM中进行实验验证。双峰AFM可观察到转换为能量数量(即病毒和散发力),其用于在该领域中表征柔软物质。类似于模拟,对于这些测量中的每一个,选择三个不同的激光位置。最后,发现悬臂上存在某些位置,该位置应该避免用于将激光放置在激发更高的特征范围内。因此,将激光定位为其长度的80%,同时用聚合物表面上的第一和第二特征模具进行双模AFM可以降低相位对比度。得出结论:(1):(1)僵硬表面上的接触模式AFM可能无法通过改变激光位置的变化来实现,(2)激光未对准可导致攻击模式的高达40%的错误组分和(3)相对对比的10%除了双峰AFM中振幅振荡减少的20%百分比。它显示出这会导致材料的错误组织。通过将激光位置更靠近悬臂的夹紧端,可能发生表面压痕。虽然这被认为是柔软物质成像的表面损伤,但它可以被认为是用于表面改性的多频AFM的新能力。

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