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线性极化超强激光场中新型稳定的多电荷负原子离子

New stable multiply charged negative atomic ions in linearly polarized superintense laser fields.

作者信息

Wei Qi, Kais Sabre, Moiseyev Nimrod

机构信息

Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, USA.

出版信息

J Chem Phys. 2006 May 28;124(20):201108. doi: 10.1063/1.2207619.

Abstract

Singly charged negative atomic ions exist in the gas phase and are of fundamental importance in atomic and molecular physics. However, theoretical calculations and experimental results clearly exclude the existence of any stable doubly-negatively-charged atomic ion in the gas phase, only one electron can be added to a free atom in the gas phase. In this report, using the high-frequency Floquet theory, we predict that in a linear superintense laser field one can stabilize multiply charged negative atomic ions in the gas phase. We present self-consistent field calculations for the linear superintense laser fields needed to bind extra one and two electrons to form He-, He2-, and Li2-, with detachment energies dependent on the laser intensity and maximal values of 1.2, 0.12, and 0.13 eV, respectively. The fields and frequencies needed for binding extra electrons are within experimental reach. This method of stabilization is general and can be used to predict stability of larger multiply charged negative atomic ions.

摘要

单电荷负原子离子存在于气相中,在原子和分子物理学中具有根本重要性。然而,理论计算和实验结果明确排除了气相中任何稳定的双电荷负原子离子的存在,气相中的自由原子只能添加一个电子。在本报告中,我们使用高频弗洛凯理论预测,在一个线性超强激光场中,可以在气相中稳定多电荷负原子离子。我们给出了将额外的一个和两个电子束缚形成He⁻、He₂⁻和Li₂⁻所需的线性超强激光场的自洽场计算结果,其脱离能取决于激光强度,最大值分别为1.2、0.12和0.13电子伏特。束缚额外电子所需的场强和频率在实验可达范围内。这种稳定化方法具有普遍性,可用于预测更大的多电荷负原子离子的稳定性。

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