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超越化学动力学走向核聚变的团簇动力学。

Cluster dynamics transcending chemical dynamics toward nuclear fusion.

作者信息

Heidenreich Andreas, Jortner Joshua, Last Isidore

机构信息

School of Chemistry, Tel Aviv University, Ramat Aviv, Tel Aviv 69978, Israel.

出版信息

Proc Natl Acad Sci U S A. 2006 Jul 11;103(28):10589-93. doi: 10.1073/pnas.0508622103. Epub 2006 Jun 1.

Abstract

Ultrafast cluster dynamics encompasses femtosecond nuclear dynamics, attosecond electron dynamics, and electron-nuclear dynamics in ultraintense laser fields (peak intensities 10(15)-10(20) W.cm(-2)). Extreme cluster multielectron ionization produces highly charged cluster ions, e.g., (C(4+)(D(+))(4))(n) and (D(+)I(22+))(n) at I(M) = 10(18) W.cm(-2), that undergo Coulomb explosion (CE) with the production of high-energy (5 keV to 1 MeV) ions, which can trigger nuclear reactions in an assembly of exploding clusters. The laser intensity and the cluster size dependence of the dynamics and energetics of CE of (D(2))(n), (HT)(n), (CD(4))(n), (DI)(n), (CD(3)I)(n), and (CH(3)I)(n) clusters were explored by electrostatic models and molecular dynamics simulations, quantifying energetic driving effects, and kinematic run-over effects. The optimization of table-top dd nuclear fusion driven by CE of deuterium containing heteroclusters is realized for light-heavy heteroclusters of the largest size, which allows for the prevalence of cluster vertical ionization at the highest intensity of the laser field. We demonstrate a 7-orders-of-magnitude enhancement of the yield of dd nuclear fusion driven by CE of light-heavy heteroclusters as compared with (D(2))(n) clusters of the same size. Prospective applications for the attainment of table-top nucleosynthesis reactions, e.g., (12)C(P,gamma)(13)N driven by CE of (CH(3)I)(n) clusters, were explored.

摘要

超快团簇动力学涵盖了在超强激光场(峰值强度为10(15)-10(20) W.cm(-2))中的飞秒核动力学、阿秒电子动力学以及电子-核动力学。极端团簇多电子电离产生高电荷团簇离子,例如在I(M)=10(18) W.cm(-2)时的(C(4+)(D(+))(4))(n)和(D(+)I(22+))(n),这些离子会经历库仑爆炸(CE)并产生高能(5 keV至1 MeV)离子,这会在爆炸团簇的集合中引发核反应。通过静电模型和分子动力学模拟,研究了(D(2))(n)、(HT)(n)、(CD(4))(n)、(DI)(n)、(CD(3)I)(n)和(CH(3)I)(n)团簇的CE动力学和能量学对激光强度和团簇尺寸的依赖性,量化了能量驱动效应和运动学超越效应。对于最大尺寸的轻-重杂团簇,实现了由含氘杂团簇的CE驱动的桌面氘-氘核聚变的优化,这使得在激光场的最高强度下团簇垂直电离占主导。我们证明,与相同尺寸的(D(2))(n)团簇相比,轻-重杂团簇的CE驱动的氘-氘核聚变产率提高了7个数量级。探索了实现桌面核合成反应的潜在应用,例如由(CH(3)I)(n)团簇的CE驱动的(12)C(P,γ)(13)N。

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