Efficient Reduction of Casimir Forces by Self‐Assembled Bio‐Molecular Thin Films

Author:

Sedmik René I.P.12ORCID,Urech Alexander13ORCID,Zalevsky Zeev4ORCID,Carmeli Itai45ORCID

Affiliation:

1. Department of Physics & Astronomy and LaserLaB, VU Amsterdam 1081HV Netherlands

2. Atominstitut TU Wien Vienna 1020 Austria

3. Faculty of Science University of Amsterdam Amsterdam 1098XH Netherlands

4. Bar Ilan university Ramat‐Gan 52900 Israel

5. Tel Aviv university Tel Aviv 69978 Israel

Abstract

AbstractCasimir forces arise if the spectrum of electromagnetic fluctuations are restricted by boundaries. There is great interest both in fundamental science and technical applications to better understand and technically control these forces. In this work, the influence of five different self‐assembled bio and organic monolayer thin films on the Casimir force between a plate and a sphere is experimentally investigated. It is found that the films, despite being a mere few nanometers thick, reduce the Casimir force by up to 14%. Spectroscopic data indicate a broad absorption band whose presence can be attributed to the mixing of electronic states of the underlying gold layer and those of the molecular film due to charge rearrangement. Using Lifshitz theory, it is calculated that the observed change in the Casimir force is consistent with the measured change in the effective dielectric properties. The nanometer‐sized molecules can penetrate small cavities, and cover any surface with high efficiency. This process seems compatible with current methods in the production of micro‐electromechanical systems (MEMS), which cannot be miniaturized beyond a certain size due to ‘stiction’ caused by the Casimir effect. This approach can therefore offer a practical solution for this problem.

Funder

Foundation for Fundamental Research on Matter

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Publisher

Wiley

Reference92 articles.

1. Demonstration of the Casimir Force in the 0.6 to6μmRange

2. While this is also the case for van der Waals interactions [1]the literature denotes only shorter separations as the ‘van der Waals regime’.[5]

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