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Quantum Electronics on Quantum Liquids and Solids
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Nonpolar atoms or molecules with low particle mass and weak inter-particle interactions can form quantum liquids and solids (QLS) at low temperatures. Excess electrons naturally bind to the surfaces of QLS in a vacuum, exhibiting unique quantum electronic behaviors in two and lower dimensions. This article reviews the historical development and recent progress in this field. Key topics include collective and individual electron transport on liquid helium, solid neon, and solid hydrogen; theoretical proposals and experimental efforts toward single-electron qubits on superfluid helium; the recent experimental realization of single-electron charge qubits on solid neon; and related theoretical calculations. Finally, we discuss and envision future exploration of quantum electronics in heterogeneous QLS systems.
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Effect of helium surface fluctuations on the Rydberg transition of trapped electrons
Experiments show sub-hertz oscillations of the helium depth in an electron microchannel, attributed to superfluid film flow, which shift the electron Rydberg transition by tens of gigahertz.
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