超流氦涡旋环中的电子自俘获

A. Khrapak, S. Bronin
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引用次数: 0

摘要

注入大多数非极性介质液体中的电子的迁移率比正离子的迁移率高几个数量级。然而,电子在液氦中的行为是反常的。电子的迁移率比经典朗之万理论所期望的值低几个数量级,甚至比正离子的迁移率低几倍。其原因是氦原子之间强烈的交换排斥力使电子在纳米泡中定位在能量上有利。除了普通的电子泡外,多年前在超流氦中还发现了另外两种负电荷载体:“快速”离子和“外来”离子。快速离子的迁移率大约是电子气泡迁移率的7倍,而一类外来离子(超过10个成员)的迁移率介于这两个值之间。本文提出了一个模型,根据该模型,超流氦中的快速负离子和外来负离子代表了涡旋环中电子的局域态。电子在涡旋核内的径向和纵向运动的量子化,以及液氦在带电复合体周围的涡旋运动的量子化,导致存在一整套具有不同半径和涡量量子的电子涡激发态。提出的涡旋环中注入电子自定域的简单模型可以理解超流氦中快速和外来离子的性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electron Self-Trapping in Vortex Rings in Superfluid Helium
The mobility of electrons injected in the majority of nonpolar dielectric liquids is a few orders of magnitude higher than the mobility of positive ions. However, the behavior of electrons in liquid helium is anomalous. The electron mobility is a few orders of magnitude lower than the value expected according to the classical Langevin theory and even a few times lower than the mobility of positive ions. The reason is that it is energetically favorable for an electron to be localized in nanobubble owing to a strong exchange repulsion from helium atoms. In addition to ordinary electron bubbles, two more types of negative charge carriers were discovered many years ago in superfluid helium: “fast” and “exotic” ions. The mobility of fast ions is approximately seven times higher than the mobility of electron bubbles, whereas the mobility of a family of exotic ions (more than ten members) lies between these two values. In the present work a model according to which fast and exotic negative ions in superfluid helium represent the localized states of electrons in vortex rings is presented. The quantization of radial and longitudinal motions of electrons inside the vortex core and the quantization of the vortex motion of liquid helium around the charged complex lead to the existence of a whole family of excited states of electron vortices with different radii and quanta of vorticity. The proposed simple model of autolocalization of injected electrons in vortex rings allows to understand the nature of fast and exotic ions in superfluid helium.
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