A CNN maps single-energy LDOS maps back to the disorder potential in tight-binding models with test MSE 0.016 (1D) and 0.005 (2D).
Automated Structure Discovery for Scanning Tunneling Microscopy
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abstract
Scanning tunnelling microscopy (STM) with a functionalized tip apex reveals the geometric and electronic structure of a sample within the same experiment. However, the complex nature of the signal makes images difficult to interpret and has so far limited most research to planar samples with a known chemical composition. Here, we present automated structure discovery for STM (ASD-STM), a machine learning tool for predicting the atomic structure directly from an STM image, by building upon successful methods for structure discovery in non-contact atomic force microscopy (nc-AFM). We apply the method on various organic molecules and achieve good accuracy on structure predictions and chemical identification on a qualitative level, while highlighting future development requirements to ASD-STM. This method is directly applicable to experimental STM images of organic molecules, making structure discovery available for a wider SPM audience outside of nc-AFM. This work also opens doors for more advanced machine learning methods to be developed for STM discovery.
fields
cond-mat.dis-nn 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
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Reconstructing the Hamiltonian from the local density of states using neural networks
A CNN maps single-energy LDOS maps back to the disorder potential in tight-binding models with test MSE 0.016 (1D) and 0.005 (2D).