Tunable critical Casimir forces counteract Casimir-Lifshitz attraction
arXiv:2202.10926 · doi:10.1038/s41567-022-01795-6
Abstract
Casimir forces in quantum electrodynamics emerge between microscopic metallic objects because of the confinement of the vacuum electromagnetic fluctuations occurring even at zero temperature. Their generalization at finite temperature and in material media are referred to as Casimir--Lifshitz forces. These forces are typically attractive, leading to the widespread problem of stiction between the metallic parts of micro- and nanodevices. Recently, repulsive Casimir forces have been experimentally realized but their reliance on specialized materials prevents their dynamic control and thus limits their further applicability. Here, we experimentally demonstrate that repulsive critical Casimir forces, which emerge in a critical binary liquid mixture upon approaching the critical temperature, can be used to actively control microscopic and nanoscopic objects with nanometer precision. We demonstrate this by using critical Casimir forces to prevent the stiction caused by the Casimir--Lifshitz forces. We study a microscopic gold flake above a flat gold-coated substrate immersed in a critical mixture. Far from the critical temperature, stiction occurs because of dominant Casimir--Lifshitz forces. Upon approaching the critical temperature, however, we observe the emergence of repulsive critical Casimir forces that are sufficiently strong to counteract stiction. This experimental demonstration can accelerate the development of micro- and nanodevices by preventing stiction as well as providing active control and precise tunability of the forces acting between their constituent parts.
27 pages, 5 figures
References in corpus (12)
- The Casimir effect: from quantum to critical fluctuations
- Quantum levitation by left-handed metamaterials
- Critical Casimir forces in colloidal suspensions on chemically patterned surfaces
- Casimir Force and In Situ Surface Potential Measurements on Nanomembranes
- Comment on the sign of the Casimir force
- Fluctuation-Induced Casimir Forces in Granular Fluids
- Critical Casimir effect for colloids close to chemically patterned substrates
- Salt-induced changes of colloidal interactions in critical mixtures
- Trapping colloids near chemical stripes via critical Casimir forces
- Critical Casimir forces steered by patterned substrates
- Tunable critical Casimir forces counteract Casimir-Lifshitz attraction
- Critical and near critical phase behaviour and interplay between the thermodynamic Casimir and van der Waals forces in confined non-polar fluid medium with competing surface and substrate potentials
Cited by in corpus (8)
- Critical Casimir Effect: Exact Results
- Tunable critical Casimir forces counteract Casimir-Lifshitz attraction
- Quantum trapping and rotational self-alignment in triangular Casimir microcavities
- Fluctuation-induced Interactions in Micro- and Nano-systems: Survey of Some Basic Results
- Casimir repulsion turned into attraction by the nonlocal response of salted water
- Finite-size Nagle-Kardar model: Casimir force
- Thermal Radiation Force and Torque on Moving Nanostructures with Anisotropic Optical Response
- Effective binding potential from Casimir interactions: the case of the Bose gas