Quantum trapping and rotational self-alignment in triangular Casimir microcavities
Artikel i vetenskaplig tidskrift, 2024

Casimir torque, a rotational motion driven by zero-point energy minimization, is a problem that attracts notable research interest. Recently, it has been realized using liquid crystal phases and natural anisotropic substrates. However, for natural materials, substantial torque occurs only at van der Waals distances of ~10 nm. Here, we use Casimir self-assembly with triangular gold nanostructures for rotational self-alignment at truly Casimir distances (100 to 200 nm separation). The interplay of repulsive electrostatic and attractive Casimir potentials forms a stable quantum trap, giving rise to a tunable Fabry-Pérot microcavity. This cavity self-aligns both laterally and rotationally to maximize area overlap between templated and floating flakes. The rotational self-alignment is sensitive to the equilibrium distance between the two triangles and their area, offering possibilities for active control via electrostatic screening manipulation. Our self-assembled Casimir microcavities present a versatile and tunable platform for nanophotonic, polaritonic, and optomechanical applications.

Författare

Betül Kücüköz

Chalmers, Fysik, Nano- och biofysik

Oleg Kotov

Chalmers, Fysik, Nano- och biofysik

Adriana Canales Ramos

Chalmers, Fysik, Nano- och biofysik

Aleksandr Poliakov

Chalmers, Fysik, Nano- och biofysik

Abhay Vivek Agrawal

Chalmers, Fysik, Nano- och biofysik

Tomasz Antosiewicz

Chalmers, Fysik, Bionanofotonik

Uniwersytet Warszawski

Timur Shegai

Chalmers, Fysik, Nano- och biofysik

Science advances

2375-2548 (eISSN)

Vol. 10 17 eadn1825

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Ämneskategorier

Beräkningsmatematik

Atom- och molekylfysik och optik

Den kondenserade materiens fysik

DOI

10.1126/sciadv.adn1825

PubMed

38657070

Mer information

Senast uppdaterat

2024-05-13