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用于多频力显微镜的定制微悬臂优化

Tailored Microcantilever Optimization for Multifrequency Force Microscopy.

作者信息

Bhattacharya Gourav, Lionadi Indrianita, Stevenson Andrew, Ward Joanna, Payam Amir Farokh

机构信息

Nanotechnology and Integrated Bioengineering Centre (NIBEC), School of Engineering, Ulster University, Belfast, BT15 1AP, UK.

出版信息

Adv Sci (Weinh). 2023 Nov;10(33):e2303476. doi: 10.1002/advs.202303476. Epub 2023 Oct 22.

DOI:10.1002/advs.202303476
PMID:37867232
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10667852/
Abstract

Microcantilevers are at the heart of atomic force microscopy (AFM) and play a significant role in AFM-based techniques. Recent advancements in multifrequency AFM require the simultaneous excitation and detection of multiple eigenfrequencies of microcantilevers to assess more data channels to quantify the material properties. However, to achieve higher spatiotemporal resolution there is a need to optimize the structure of microcantilevers. In this study, the architecture of the cantilever with gold nanoparticles using a dip-coating method is modified, aiming to tune the higher eigenmodes of the microcantilever as integer multiples of its fundamental frequency. Through the theoretical methodology and simulative model, that integer harmonics improve the coupling in multifrequency AFM measurements is demonstrated, leading to enhanced image quality and resolution. Furthermore, via the combined theoretical-experimental approach, the interplay between induced mass and stiffness change of the modified cantilever depending on the attached particle location, size, mass, and geometry is found. To validate the results of this predictive model, tapping-mode AFM is utilized and bimodal Amplitude Modulation AFM techniques to examine and quantify the impact of tuning higher-order eigenmodes on the imaging quality of a polystyrene-polymethylmethacrylate (PS-PMMA) block co-polymer assembly deposited on a glass slide and Highly Ordered Pyrolytic Graphite (HOPG).

摘要

微悬臂梁是原子力显微镜(AFM)的核心部件,在基于AFM的技术中发挥着重要作用。多频AFM的最新进展要求同时激发和检测微悬臂梁的多个本征频率,以便评估更多数据通道来量化材料特性。然而,为了实现更高的时空分辨率,需要优化微悬臂梁的结构。在本研究中,采用浸涂法对带有金纳米颗粒的悬臂梁结构进行了改进,旨在将微悬臂梁的高阶本征模式调谐为其基频的整数倍。通过理论方法和模拟模型,证明了整数谐波可改善多频AFM测量中的耦合,从而提高图像质量和分辨率。此外,通过理论与实验相结合的方法,发现了改性悬臂梁的诱导质量和刚度变化之间的相互作用,该相互作用取决于附着颗粒的位置、尺寸、质量和几何形状。为了验证该预测模型的结果,使用了轻敲模式AFM和双峰幅度调制AFM技术,以检查和量化调谐高阶本征模式对沉积在载玻片和高度有序热解石墨(HOPG)上的聚苯乙烯-聚甲基丙烯酸甲酯(PS-PMMA)嵌段共聚物组件成像质量的影响。

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