English

Electrostatically-induced topological phase transitions in polyacetylene molecules

Mesoscale and Nanoscale Physics 2026-03-05 v1

Abstract

We study the electronic properties of a linear trans-polyacetylene (tPA) molecule capacitively coupled to an external gate voltage VgV_g of width dd. We describe this system using the Takayama-Lin-Liu-Maki (TLM) model in the continuum, and analyze it within the Abelian bosonization formalism, which allows us to treat both electronic and lattice degrees of freedom and to incorporate the effects of repulsive Coulomb interactions among electrons. The global ground state describing simultaneously the electronic charge-density field as well as the lattice dimerization field of a tPA molecule is shown to consist of multikink solutions of a modified sine-Gordon equation for the charge-density field, which is controlled by VgV_g, the width dd, and the Luttinger parameter KK encoding the strength of electron-electron interactions. These solutions belong to distinct topological sectors labeled by an integer invariant qq that simultaneously quantifies both the bound charge and the number of domain walls in the dimerization pattern induced at the gated region. Increasing VgV_g drives a sequence of topological phase transitions characterized by abrupt changes in qq. We further examine the effect of repulsive Coulomb interactions on the resulting topological phase diagram, and finally, we discuss the relevance of our findings for potential nanoelectronic devices based on gated tPA molecules.

Keywords

Cite

@article{arxiv.2603.03473,
  title  = {Electrostatically-induced topological phase transitions in polyacetylene molecules},
  author = {Tomás Suleiman and Aníbal Iucci and Alejandro Martín Lobos},
  journal= {arXiv preprint arXiv:2603.03473},
  year   = {2026}
}

Comments

15 pages, 5 figures

R2 v1 2026-07-01T11:02:03.429Z