English

Confinement-Induced Nonlocality and Casimir Force in Transdimensional Systems

Quantum Physics 2024-02-28 v1

Abstract

We study within the framework of the Lifshitz theory the long-range Casimir force for in-plane isotropic and anisotropic free-standing transdimensional material slabs. In the former case, we show that the confinement-induced nonlocality not only weakens the attraction of ultrathin slabs but also changes the distance dependence of the material-dependent correction to the Casimir force to go as  ⁣1/ ⁣l\sim\!1/\!\sqrt{l} contrary to the  ⁣1/l\sim\!1/l dependence of that of the local Lifshitz force. In the latter case, we use closely packed array of parallel aligned single-wall carbon nanotubes in a dielectric layer of finite thickness to demonstrate strong orientational anisotropy and crossover behavior for the inter-slab attractive force in addition to its reduction with decreasing slab thickness. We give physical insight as to why such a pair of ultrathin slabs prefers to stick together in the perpendicularly oriented manner, rather than in the parallel relative orientation as one would customarily expect.

Keywords

Cite

@article{arxiv.2307.06452,
  title  = {Confinement-Induced Nonlocality and Casimir Force in Transdimensional Systems},
  author = {Igor V. Bondarev and Michael D. Pugh and Pablo Rodriguez-Lopez and Lilia M. Woods and Mauro Antezza},
  journal= {arXiv preprint arXiv:2307.06452},
  year   = {2024}
}

Comments

20 pages, 4 figures, 52 references

R2 v1 2026-06-28T11:28:56.955Z