Quantum and critical Casimir effects: bridging fluctuation physics and nanotechnology

Abstract

Fluctuation-induced forces, primarily represented by quantum and critical Casimir effects, play a pivotal role at the nanoscale. This review explores the theoretical and experimental landscapes of these forces, offering a comprehensive analysis of their similarities and distinctions. We emphasize the effects of material properties, geometry, and temperature in shaping these forces and their roles in various nanoscale systems, both colloidal and solid-state. We devote special attention to the Casimir torque, the influence of magnetism on the Casimir force, and the use of Casimir effects for the generation of optical resonators. Through this comparative study, we elucidate the underlying physics of these phenomena, fostering insights that advance applications in nanomechanics, optomechanics, and quantum technologies.

Graphical abstract: Quantum and critical Casimir effects: bridging fluctuation physics and nanotechnology

Article information

Article type
Review Article
Submitted
28 3月 2025
Accepted
02 5月 2025
First published
12 5月 2025

Nanoscale, 2025, Advance Article

Quantum and critical Casimir effects: bridging fluctuation physics and nanotechnology

R. Passante, L. Rizzuto, P. Schall and E. Marino, Nanoscale, 2025, Advance Article , DOI: 10.1039/D5NR01288K

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