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Updated: Oct 1, 2026

Sub-nanometer Resolution Imaging with Amplitude-modulation Atomic Force Microscopy in Liquid
Published on: December 20, 2016
Force-Isosurface Simulations Probe the Limits of High-Resolution AFM on Three-Dimensional Molecules
Edward Dunn1, Robert James Young2, Samuel Jarvis3
1Department of Physics, Lancaster University, Bailrigg, Lancaster, England, LA1 4YW, United Kingdom of Great Britain and Northern Ireland.
Abstract:
High-resolution atomic force microscopy has transformed molecular imaging by revealing intramolecular structure directly in real space. A major remaining challenge is to extend this capability from largely planar molecules to non-planar molecular systems, where the most important structural information may be distributed across different heights above the surface. Here we use probe-particle-model simulations to predict the constant-force contours expected above molecules with increasing structural complexity. By extracting force isosurfaces from simulated three-dimensional force fields, we compare the molecular information retained in constant-height and constant-force images. For tilted benzene and pyrrole, constant-force images preserve the molecular framework across a range of adsorption angles and allow the molecular orientation to be recovered quantitatively. For larger non-planar and three-dimensional systems, simulations identify characteristic force-isosurface contrast associated with adsorption geometry, lower-lying molecular structure and curved molecular surfaces. These results provide target contrast patterns for force isosurfaces obtainable from three-dimensional force-mapping experiments and quantify the molecular information retained by ideal force-isosurface imaging as molecular systems become progressively non-planar.
