Abstract

The Casimir interaction and torque are related phenomena originating from the exchange of electromagnetic excitations between objects. While the Casimir force exists between any types of objects, the materials or geometrical anisotropy drives the emergence of the Casimir torque. Here both phenomena are studied theoretically between dielectric films with immersed parallel single wall carbon nanotubes in the dilute limit with their chirality and collective electronic and optical response properties taken into account. It is found that the Casimir interaction is dominated by thermal fluctuations at sub-micron separations, while the torque is primarily determined by quantum mechanical effects. This peculiar quantum vs. thermal separation is attributed to the strong influence of reduced dimensionality and inherent anisotropy of the materials. Our study suggests that nanostructured anisotropic materials can serve as novel platforms to uncover new functionalities in ubiquitous Casimir phenomena.
Loading...

Quotes

13 appointments in WOS
0 citations in

Journal Title

Journal ISSN

Volume Title

Publisher

American Physical Society

URL external

Description

Keywords

Citation

Phys. Rev. B 109, 035422 (2024)

Endorsement

Review

Supplemented By

Referenced By

Statistics

Views
110
Downloads
65

Bibliographic managers

Document viewer

Select a file to preview:
Reload