Chen's derivative rule revisited: Role of tip-orbital interference in STM
G. M\'andi, K. Palot\'as

TL;DR
This paper revises Chen's derivative rule for STM simulations, incorporating tip-orbital interference and arbitrary tip orientations, resulting in a faster and more accurate model for quantum interference effects in STM imaging.
Contribution
The authors introduce a revised, computationally efficient tunneling model that includes tip-orbital interference and arbitrary orientations, improving upon previous methods like the Bardeen and Tersoff-Hamann models.
Findings
Model is 25 times faster than the Bardeen method
Electronic structure of the tip significantly affects STM images
Interference between tip orbitals influences image contrast
Abstract
On the occasion of its 25th anniversary, we revise Chen's derivative rule for electron tunneling [C.J. Chen, Phys. Rev. B 42, 8841 (1990)] for the purpose of computationally efficient simulations of scanning tunneling microscopy (STM) based on first principles electronic structure data. The revised model allows the weighting of tunneling matrix elements of different tip orbital characters by an arbitrary energy independent choice or based on energy dependent weighting coefficients obtained by an expansion of the tip single electron wavefunctions/density of states projected onto the tip apex atom. Tip-orbital interference in the STM junction is included in the model by construction and can be analyzed quantitatively. As a further advantage, arbitrary tip geometrical orientations are included in the revised model by rotating the coordinate system of the tip apex using Euler angles and…
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