...
首页> 外文期刊>Physics of plasmas >Strong nonlinear electron multiplication without impact ionization in dielectric nanoparticles embedded in optical materials
【24h】

Strong nonlinear electron multiplication without impact ionization in dielectric nanoparticles embedded in optical materials

机译:嵌入光学材料中的电介质纳米粒子中的强非线性电子倍增而无碰撞电离

获取原文
获取原文并翻译 | 示例
           

摘要

The interaction of a dielectric nano-particle or nano-defect, embedded in the bulk of an optical material, with an intense and short laser pulse is addressed. Due to the finite size of the target and the possible large production of electrons in the conduction band, large electric field enhancement or surintensity may be induced inside the particle. Since ionization rates also depend on the instantaneous electric field, a strong time-dependent connection between electron production and surintensity may take place. Such a connection is shown to possibly lead to a nonlinear temporal increase in the free electron density relevant from an avalanche process, called optical avalanche, similar to the one induced by electron impact ionization. However, the present build-up in the electron density clearly exhibits more nonlinear features than traditional collisional avalanche, which is shown to induce an exponential growth of the density: when the optical avalanche is engaged, the temporal electron evolution exhibits an explosive behavior. That leads to a nanometric plasma at solid density whose subsequent laser heating may lead locally to matter under extreme conditions. Furthermore, we show that the defect induces a change in the ionization mechanism in the course of interaction: a transition from multiphoton to tunnel ionization may take place.
机译:解决了嵌入在光学材料主体中的电介质纳米粒子或纳米缺陷与强而短的激光脉冲之间的相互作用。由于靶的大小有限,并且在导带中可能产生大量电子,因此可能会在粒子内部引起较大的电场增强或超强度。由于电离速率还取决于瞬时电场,因此在电子产生和超强度之间可能会发生时间依赖性强的联系。已显示这种连接可能导致与雪崩过程(称为光学雪崩)相关的自由电子密度的非线性时间增加,类似于电子碰撞电离引起的雪崩过程。但是,目前电子密度的累积显然比传统的碰撞雪崩具有更多的非线性特征,这表明它引起密度的指数增长:当接合光学雪崩时,时间电子演化表现出爆炸行为。这导致了固体密度的纳米等离子体,其随后的激光加热可能会在极端条件下局部导致物质。此外,我们表明缺陷在相互作用过程中引起电离机理的改变:可能发生从多光子到隧道电离的转变。

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