Accurate Electron Drift Mobility Measurements in Moderately Dense Helium Gas at Several Temperatures

Author:

Borghesani Armando FrancescoORCID

Abstract

We report new accurate measurements of the drift mobility μ of quasifree electrons in moderately dense helium gas in the temperature range 26K≤T≤300K for densities lower than those at which states of electrons localized in bubbles appear. By heuristically including multiple-scattering effects into classical kinetic formulas, as previously done for neon and argon, an excellent description of the field E, density N, and temperature T dependence of μ is obtained. Moreover, the experimental evidence suggests that the strong decrease of the zero-field density-normalized mobility μ0N with increasing N from the low up to intermediate density regime is mainly due to weak localization of electrons caused by the intrinsic disorder of the system, whereas the further decrease of μ0N for even larger N is due to electron self-trapping in cavities. We suggest that a distinction between weakly localized and electron bubble states can be done by inspecting the behavior of μ0N as a function of N at intermediate densities.

Publisher

MDPI AG

Subject

Condensed Matter Physics,Nuclear and High Energy Physics,Atomic and Molecular Physics, and Optics

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. New analysis of the temperature-dependent threshold density for electron self-trapping in gaseous helium;The Journal of Chemical Physics;2024-06-24

2. Loading a Trap, Particle Transport and Loss Mechanisms;Springer Series on Atomic, Optical, and Plasma Physics;2024

3. Threshold density for electron self-localization in gaseous Helium;2023 IEEE 22nd International Conference on Dielectric Liquids (ICDL);2023-06-25

4. Validation of the Heuristic Model for the Electron Mobility in Dense Helium Gas;2022 IEEE 21st International Conference on Dielectric Liquids (ICDL);2022-05-29

5. Variation of Corona Current in Cryogenic Helium Due to Localization of Electrons;2022 IEEE 21st International Conference on Dielectric Liquids (ICDL);2022-05-29

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