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Control of Molecular Rotation in Helium Nanodroplets with an Optical Centrifuge

Ian MacPhail-Bartley1, Alexander A. Milner1, Frank Stienkemeier2, and Valery Milner1,*

  • *Contact author: vmilner@phas.ubc.ca

Phys. Rev. Lett. 136, 033002 – Published 22 January, 2026

DOI: https://doi.org/10.1103/5jnj-97vs

Abstract

We experimentally demonstrate that the rotation of molecules embedded in helium nanodroplets can be controlled with an optical centrifuge, allowing for the study of molecular dynamics inside the strongly interacting many-body environment of superfluid helium at variable levels of rotational excitation. By doping the droplets with dimers of nitric oxide, (NO)2, and measuring the degree of their centrifuge-induced alignment as a function of time, we show both the forced in-field rotation of molecules in a continuous range of frequencies, as well as the field-free resonant rotation with a long nanosecond-scale decay. The ability to control and monitor the rotational dynamics of molecular rotors inside the superfluid medium may shed new light on superfluidity and the interaction of superfluids with defects at the atomic level.

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synopsis

Spinning Molecules Suspended in Superfluid

Published 22 January, 2026

A technique for spinning up molecules in a gas has now been adapted to work with superfluid helium as the host medium.

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