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Machine learning to probe modal interaction in dynamic atomic force microscopy
DOI:10.1016/j.ymssp.2022.109312.png)
摘要
En 中文
Modal interactions are pervasive effects that commonly emerge in nanomechanical systems. The coupling of vibrating modes can be leveraged in many ways, including to enhance sensing or to disclose complex phenomenologies. In this work we show how machine learning and data-driven approaches could be used to capture intermodal coupling. We employ a quasirecurrent neural network (QRNN) for identifying mode coupling and verify its applicability on experimental data obtained from tapping mode atomic force microscopy (AFM). Hidden units of the QRNN are monitored to trace fingerprints of modes activation and to quantify their contributions over the global distortion of orbits in the phase space. To demonstrate the broad applicability of the method, the trained model is re-applied over different experiments and on diverse materials. Over a range of tip-sample configurations, dynamic AFM possesses features general enough to be seized by the QRNN and it is not required an ad-hoc re-training for the identification of interacting modes. Our study opens up a route for utilizing established machine learning techniques for rapid recognition of nonlinear complex effect such as internal resonances in nanotechnology. The QRNN analysis is meant to assist AFM sensing operations when exploiting modal interaction to enhance the signal-to-noise ratio of higher harmonics and provide high resolution compositional contrast in multi-frequency AFM applications.
Keyword:
AFM
Machine learning
Data-driven
QRNN
Mode coupling
Nonlinear dynamics
期刊
IF:
8.9
论文数:
1.3W
被引数:
6.6W
机构
引用论文
New modes for subsurface atomic force microscopy through nanomechanical coupling
NATURE NANOTECHNOLOGY
IF34.9
Attractive and repulsive tip-sample interaction regimes in tapping-mode atomic force microscopy
PHYSICAL REVIEW B
IF3.7
Recent advances and applications of machine learning in solid-state materials science机器学习在固体材料科学中的最新进展及应用

