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通过动态控制晶格熔化实现固体中可调谐的兆安级电子电流传输。

Tunable mega-ampere electron current propagation in solids by dynamic control of lattice melt.

机构信息

SUPA, Department of Physics, University of Strathclyde, Glasgow G4 0NG, United Kingdom.

Central Laser Facility, STFC Rutherford Appleton Laboratory, Oxfordshire OX11 0QX, United Kingdom.

出版信息

Phys Rev Lett. 2014 Oct 31;113(18):185001. doi: 10.1103/PhysRevLett.113.185001.

Abstract

The influence of lattice-melt-induced resistivity gradients on the transport of mega-ampere currents of fast electrons in solids is investigated numerically and experimentally using laser-accelerated protons to induce isochoric heating. Tailoring the heating profile enables the resistive magnetic fields which strongly influence the current propagation to be manipulated. This tunable laser-driven process enables important fast electron beam properties, including the beam divergence, profile, and symmetry to be actively tailored, and without recourse to complex target manufacture.

摘要

采用激光加速质子诱发等容加热的方法,从数值和实验两方面研究了格点-熔体诱导电阻率梯度对固体中兆安级快电子传输的影响。通过对加热剖面进行优化设计,可以控制对电流传输有重要影响的电阻磁场。这种可调谐的激光驱动过程可以实现对重要的快电子束特性,包括束发散度、轮廓和对称性的主动调控,而无需复杂的目标制造。

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