首页> 外文期刊>Low temperature physics: Simultaneous Russian - English publication >Oscillation mode transformation of edge magnetoplasmons in two-dimensional electron system on liquid-helium surface
【24h】

Oscillation mode transformation of edge magnetoplasmons in two-dimensional electron system on liquid-helium surface

机译:液氦表面二维电子系统中边缘磁等离子体的振荡模式转换

获取原文
获取原文并翻译 | 示例
           

摘要

We measured the resonance spectra of edge magnetoplasmon (EMP) oscillations in a two-dimensional (2D) electron system located on a liquid-helium surface below 1.1 K. Systematic measurements of the resonance frequency and the damping rate as a function of the lateral confinement electric field strength shows clear evidence of the oscillation mode transformation. A pronounced change corresponding to the mode transformation was observed in the damping rate. When 2D electrons are confined in a strong lateral electric field, the damping is weak. As the lateral confinement electric field is reduced below a certain threshold value, an abrupt enhancement of the damping rate is observed. We hypothesize that the weak damping mode in the strong lateral confinement electric field is the compressive density oscillation of the electrons near the edge (conventional EMP) and the strong damping mode in the weak confinement field is the coupled mode of conventional EMP and the boundary displacement wave (BDW). The observation of the strong damping in the BDW-EMP coupled mode is a manifestation of the nearly incompressible feature of strongly interacting classical electrons, which agrees with earlier theoretical predictions.
机译:我们测量了位于1.1 K以下液氦表面上的二维(2D)电子系统中边缘磁等离子体激元(EMP)振荡的共振谱。共振频率和阻尼率作为横向约束的函数的系统测量电场强度清楚地表明了振荡模式的转变。在阻尼率上观察到与模式转换相对应的明显变化。当二维电子被限制在一个强的横向电场中时,阻尼将很弱。当横向约束电场减小到某个阈值以下时,观察到阻尼速率的突然增加。我们假设强横向约束电场中的弱阻尼模式是边缘附近电子的压缩密度振荡(常规EMP),弱约束领域中的强阻尼模式是常规EMP与边界位移的耦合模式。波浪(BDW)。 BDW-EMP耦合模式下强阻尼的观察是强相互作用经典电子几乎不可压缩的特征的体现,这与早期的理论预测是一致的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号