Zsolt Majzik, Niko Pavliček, et al.
Nature Communications
Resolving individual atoms has always been the ultimate goal of surface microscopy. The scanning tunneling microscope images atomic-scale features on surfaces, but resolving single atoms within an adsorbed molecule remains a great challenge because the tunneling current is primarily sensitive to the local electron density of states close to the Fermi level. We demonstrate imaging of molecules with unprecedented atomic resolution by probing the short-range chemical forces with use of noncontact atomic force microscopy. The key step is functionalizing the microscope's tip apex with suitable, atomically well-defined terminations, such as CO molecules. Our experimental findings are corroborated by ab initio density functional theory calculations. Comparison with theory shows that Pauli repulsion is the source of the atomic resolution, whereas van der Waals and electrostatic forces only add a diffuse attractive background.
Zsolt Majzik, Niko Pavliček, et al.
Nature Communications
Rik Harbers, Patric Strasser, et al.
Applied Physics Letters
Laerte L. Patera, Fabian Queck, et al.
Physical Review Letters
Asma Jebali, Rainer F. Mahrt, et al.
Journal of Applied Physics