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Main Authors: Sadanandan, Adithya, Karl, Tyson, Shaik, Rahil, Zhou, Qunfei
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2604.04434
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author Sadanandan, Adithya
Karl, Tyson
Shaik, Rahil
Zhou, Qunfei
author_facet Sadanandan, Adithya
Karl, Tyson
Shaik, Rahil
Zhou, Qunfei
contents In this work, we investigate the collective electrostatic effects of one-dimensional (1D) Janus MoSTe nanotubes and their impacts on the band alignment of nanotube heterostructures. Using first-principles calculations based on Density Functional Theory, we find that the Janus nanotube generates a large and uniform electrostatic potential of over 1.3 V within the nanotube pores, which is accumulative for double wall nanotubes. We develop an analytical model to provide a quantitative understanding of the electrostatic potential and its dependence on the quadrupole moment and nanotube radius. For double wall MoSTe nanotube, we find a substantial band edge shift of about 1.0 eV for the inner tube originated from the electrostatic effects, leading to a type-II band alignment. These results demonstrate that the electrostatic effects of 1D nanotubes can be used to tune the electronic properties and band alignment of 1D nanotube heterostructures for optoelectronic and catalytic applications.
format Preprint
id arxiv_https___arxiv_org_abs_2604_04434
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Collective Electrostatics and Band Alignment in Janus MoSTe nanotubes
Sadanandan, Adithya
Karl, Tyson
Shaik, Rahil
Zhou, Qunfei
Materials Science
In this work, we investigate the collective electrostatic effects of one-dimensional (1D) Janus MoSTe nanotubes and their impacts on the band alignment of nanotube heterostructures. Using first-principles calculations based on Density Functional Theory, we find that the Janus nanotube generates a large and uniform electrostatic potential of over 1.3 V within the nanotube pores, which is accumulative for double wall nanotubes. We develop an analytical model to provide a quantitative understanding of the electrostatic potential and its dependence on the quadrupole moment and nanotube radius. For double wall MoSTe nanotube, we find a substantial band edge shift of about 1.0 eV for the inner tube originated from the electrostatic effects, leading to a type-II band alignment. These results demonstrate that the electrostatic effects of 1D nanotubes can be used to tune the electronic properties and band alignment of 1D nanotube heterostructures for optoelectronic and catalytic applications.
title Collective Electrostatics and Band Alignment in Janus MoSTe nanotubes
topic Materials Science
url https://arxiv.org/abs/2604.04434