Density functional theory method for twisted geometries with application to torsional deformations in group-IV nanotubes
Hsuan Ming Yu, Amartya S. Banerjee

TL;DR
This paper introduces a real-space density functional theory method for twisted nanostructures, enabling efficient first-principles simulations of torsional deformations in group-IV nanotubes, revealing their mechanical and electronic property variations.
Contribution
It presents a novel computational approach for simulating twisted geometries in nanotubes using helical coordinates and finite difference discretization, applicable to various group-IV materials.
Findings
Torsional stiffness scales with the cube of the nanotube radius.
Carbon nanotubes have the highest torsional stiffness among studied materials.
Armchair nanotubes exhibit periodic bandgap variations with twist.
Abstract
We present a real-space formulation and implementation of Kohn-Sham Density Functional Theory suited to twisted geometries, and apply it to the study of torsional deformations of X (X = C, Si, Ge, Sn) nanotubes. Our formulation is based on higher order finite difference discretization in helical coordinates, uses ab intio pseudopotentials, and naturally incorporates rotational (cyclic) and screw operation (i.e., helical) symmetries. We discuss several aspects of the computational method, including the form of the governing equations, details of the numerical implementation, as well as its convergence, accuracy and efficiency properties. The technique presented here is particularly well suited to the first principles simulation of quasi-one-dimensional structures and their deformations, and many systems of interest can be investigated using small simulation cells containing just a few…
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