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Superfluidity within a small helium-4 cluster: the microscopic andronikashvili experiment
1Max-Planck-Institut fur Stromungsforschung, Bunsenstrasse 10, 37073 Gottingen, Germany.
Summary
Superfluidity in helium droplets was observed by measuring the infrared spectrum of oxygen carbon sulfide (OCS) molecules. Sharp rotational lines in helium-4 droplets indicate free rotation, a microscopic sign of superfluidity.
Area of Science:
- Quantum Fluids
- Molecular Spectroscopy
- Low-Temperature Physics
Background:
- Superfluidity is a quantum mechanical phenomenon observed in certain fluids at very low temperatures.
- Helium-4 and helium-3 are isotopes of helium known to exhibit superfluidity under specific conditions.
- Molecular spectroscopy provides insights into the behavior and interactions of molecules within different environments.
Purpose of the Study:
- To investigate the rotational behavior of oxygen carbon sulfide (OCS) molecules within superfluid helium-4 and nonsuperfluid helium-3 droplets.
- To determine if the rotational spectrum of OCS can serve as a microscopic probe of superfluidity.
- To identify the minimum number of dopant atoms required to induce superfluidity in helium-3 droplets.
Main Methods:
- Infrared spectroscopy was employed to measure the spectrum of single OCS molecules.
- Experiments were conducted using large, pure helium-4 and helium-3 droplets (approximately 10^4 atoms each).
- Helium-4 atoms were incrementally added to helium-3 droplets to observe changes in the OCS spectrum.
Main Results:
- Sharp, distinct rotational lines of OCS were observed in helium-4 droplets, indicating free molecular rotation.
- A broad, featureless peak was observed for OCS in helium-3 droplets, suggesting hindered rotation.
- The addition of approximately 60 helium-4 atoms to helium-3 droplets resulted in the reappearance of sharp rotational lines.
Conclusions:
- The observed differences in OCS rotational spectra provide microscopic evidence for superfluidity in helium droplets.
- Free rotation of OCS molecules is a direct indicator of the superfluid properties of the surrounding helium.
- A minimum of 60 helium-4 atoms appears necessary to induce superfluidity in helium-3 droplets.