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Enhanced electron–positron pair production by frequency chirping in one-and two-color laser pulse fields 被引量:2
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作者 nuriman abdukerim Zi-Liang Li Bai-Song Xie 《Chinese Physics B》 SCIE EI CAS CSCD 2017年第2期48-55,共8页
Enhanced electron–positron pair production by frequency chirping in one- and two-color laser pulse fields is investigated by solving the quantum Vlasov equation. A small frequency chirp shifts the momentum spectrum a... Enhanced electron–positron pair production by frequency chirping in one- and two-color laser pulse fields is investigated by solving the quantum Vlasov equation. A small frequency chirp shifts the momentum spectrum along the momentum axis. The positive and negative frequency chirp parameters play the same role in increasing the pair number density. The sign change of the frequency chirp parameter at the moment t = 0 leads the pulse shape and momentum spectrum to be symmetric, and the number density to be increased. The number density of produced pairs in the two-color pulse field is much higher than that in the one-color pulse field and the larger frequency chirp pulse field dominates more strongly. In the two-color pulse fields, the relation between the frequency ratio of two colors and the number density is not sensitive to the parameters of small frequency chirp added in either a low frequency strong field or a high frequency weak field but sensitive to the parameters of large frequency chirp added in a high frequency weak field. 展开更多
关键词 electron–positron quantum nonlocalization quantum Vlasov equation frequency chirping
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超强场下真空产生正负电子对的动理学方法研究及其进展 被引量:3
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作者 李子良 努尔曼古丽.阿卜杜克热木 谢柏松 《物理学进展》 CSCD 北大核心 2016年第5期129-156,共28页
随着激光技术的飞速发展,实验室中所能获得的电磁场强度得到了极大的提高,从而使得强外场下真空衰变产生正反粒子对问题再次成为研究热点。不同形状外场下粒子对产生问题的理论研究不但可以加深人们对粒子对产生过程的理解,而且有助于... 随着激光技术的飞速发展,实验室中所能获得的电磁场强度得到了极大的提高,从而使得强外场下真空衰变产生正反粒子对问题再次成为研究热点。不同形状外场下粒子对产生问题的理论研究不但可以加深人们对粒子对产生过程的理解,而且有助于指导实验验证真空对产生。本文主要介绍了包括我们近期的工作在内的超强场下真空产生正负电子对的动理学方法研究及其进展。用量子动理学方法研究真空对产生问题有很多优点:不但可以得到产生粒子的数密度,而且能给出产生粒子的相空间信息;此外,还可以处理任意复杂场下的粒子对产生问题,深入研究粒子对产生的物理机制。量子动理学方法也许是探究真实激光场下真空对产生问题的最佳选择之一,有望指导实验首次验证纯光直接转化为物质的过程。 展开更多
关键词 强场物理 真空粒子对产生 量子动理学方法
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