X-raying superfluid helium droplets
Jelena Stajic
Abstract
Jelena Stajic
Abstract
Helium Superfluidity When physicists rotate the superfluid 4He, it develops a regular array of tiny whirlpools, called vortices. The same phenomenon should occur in helium droplets half a micrometer in size, but studying individual droplets is tricky. Gomez et al. used x-ray diffraction to deduce the shape of individual rotating droplets and image the resulting vortex patterns, which confirmed the superfluidity of the droplets. They found that superfluid droplets can host a surprising number of vortices and can rotate faster than normal droplets without disintegrating. Science , this issue p. [906][1] [1]: /lookup/doi/10.1126/science.1252395
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Helium Superfluidity When physicists rotate the superfluid 4He, it develops a regular array of tiny whirlpools, called vortices. The same phenomenon should occur in helium droplets half a micrometer in size, but studying individual droplets is tricky. Gomez et al. used x-ray diffraction to deduce the shape of individual rotating droplets and image the resulting vortex patterns, which confirmed the superfluidity of the droplets. They found that superfluid droplets can host a surprising number of vortices and can rotate faster than normal droplets without disintegrating. Science , this issue p. [906][1] [1]: /lookup/doi/10.1126/science.1252395
Key concepts: Superfluidity, Superfluid helium-4, Physics, Helium, Helium-4, Condensed matter physics, Nanotechnology, Materials science