3D Deep Learning Enables Accurate Layer Mapping of 2D Materials.
Xingchen DongHongwei LiZhutong JiangTheresa Grünleitnerİnci GülerJie DongKun WangMichael H KöhlerMartin JakobiBjoern H MenzeAli K YetisenIan D SharpAndreas V StierJonathan J FinleyAlexander W KochPublished in: ACS nano (2021)
Layered, two-dimensional (2D) materials are promising for next-generation photonics devices. Typically, the thickness of mechanically cleaved flakes and chemical vapor deposited thin films is distributed randomly over a large area, where accurate identification of atomic layer numbers is time-consuming. Hyperspectral imaging microscopy yields spectral information that can be used to distinguish the spectral differences of varying thickness specimens. However, its spatial resolution is relatively low due to the spectral imaging nature. In this work, we present a 3D deep learning solution called DALM (deep-learning-enabled atomic layer mapping) to merge hyperspectral reflection images (high spectral resolution) and RGB images (high spatial resolution) for the identification and segmentation of MoS2 flakes with mono-, bi-, tri-, and multilayer thicknesses. DALM is trained on a small set of labeled images, automatically predicts layer distributions and segments individual layers with high accuracy, and shows robustness to illumination and contrast variations. Further, we show its advantageous performance over the state-of-the-art model that is solely based on RGB microscope images. This AI-supported technique with high speed, spatial resolution, and accuracy allows for reliable computer-aided identification of atomically thin materials.
Keyphrases
- deep learning
- optical coherence tomography
- high resolution
- high speed
- convolutional neural network
- artificial intelligence
- single molecule
- atomic force microscopy
- machine learning
- bioinformatics analysis
- mass spectrometry
- magnetic resonance
- body composition
- magnetic resonance imaging
- social media
- computed tomography
- pet imaging
- quantum dots
- pet ct
- fluorescence imaging