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Modeling of silicon in femtosecond laser-induced modification regimes: accounting for ambipolar diffusion

机译:飞秒激光诱导的修改制度硅的建模:Ambipolar扩散的核算

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During the last decades, femtosecond laser irradiation of materials has led to the emergence of various applications based on functionalization of surfaces at the nano- and microscale. Via inducing a periodic modification on material surfaces (band gap modification, nanostructure formation, crystallization or amorphization), optical and mechanical properties can be tailored, thus turning femtosecond laser to a key technology for development of nanophotonics, bionanoengineering, and nanomechanics. Although modification of semiconductor surfaces with femtosecond laser pulses has been studied for more than two decades, the dynamics of coupling of intense laser light with excited matter remains incompletely understood. In particular, swift formation of a transient overdense electron-hole plasma dynamically modifies optical properties in the material surface layer and induces large gradients of hot charge carriers, resulting in ultrafast charge-transport phenomena. In this work, the dynamics of ultrafast laser excitation of a semiconductor material is studied theoretically on the example of silicon. A special attention is paid to the electron-hole pair dynamics, taking into account ambipolar diffusion effects. The results are compared with previously developed simulation models, and a discussion of the role of charge-carrier dynamics in localization of material modification is provided.
机译:在过去十年中,材料的飞秒激光照射导致了基于纳米和微尺寸的表面的功能化的各种应用的出现。通过诱导材料表面(带隙改性,纳米结构形成,结晶或非晶化),可以定制光学和机械性能,从而将飞秒激光转向纳米级,毕翁内因和纳米力学的关键技术。尽管已经研究了具有飞秒激光脉冲的半导体表面的修改超过二十年,但是具有激发物质的强激光耦合的动态仍然不完全理解。特别地,Swift形成瞬态过阵列电子 - 孔等离子体在材料表面层中动态地改变光学性质并诱导大梯度的热电荷载流子,导致超快电荷传输现象。在这项工作中,理论上在硅的示例上理论地研究了半导体材料的超快激光激发的动态。考虑到Ambolar扩散效果,对电子孔对动态支付了特别的注意。将结果与先前开发的模拟模型进行了比较,并提供了对电荷 - 载波动力学在材料修改本地化中的作用的讨论。

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