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A Study of Polycrystalline Silicon Damage Features Based on Nanosecond Pulse Laser Irradiation with Different Wavelength Effects

机译:基于不同波长效应的纳秒脉冲激光辐照多晶硅损伤特性的研究

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摘要

Based on PVDF (piezoelectric sensing techniques), this paper attempts to study the propagation law of shock waves in brittle materials during the process of three-wavelength laser irradiation of polysilicon, and discusses the formation mechanism of thermal shock failure. The experimental results show that the vapor pressure effect and the plasma pressure effect in the process of pulsed laser irradiation lead to the splashing of high temperature and high density melt. With the decrease of the laser wavelength, the laser breakdown threshold decreases and the shock wave is weakened. Because of the pressure effect of the laser shock, the brittle fracture zone is at the edge of the irradiated area. The surface tension gradient and surface shear wave caused by the surface wave are the result of coherent coupling between optical and thermodynamics. The average propagation velocity of laser shock wave in polysilicon is 8.47 × 103 m/s, and the experiment has reached the conclusion that the laser shock wave pressure peak exponentially distributes attenuation in the polysilicon.
机译:本文基于压电传感技术,试图研究三波长激光辐照多晶硅过程中冲击波在脆性材料中的传播规律,并探讨了热冲击破坏的形成机理。实验结果表明,脉冲激光辐照过程中的蒸汽压效应和等离子体压力效应导致了高温高密度熔体的飞溅。随着激光波长的减小,激光击穿阈值减小,冲击波减弱。由于激光冲击的压力效应,脆性断裂区位于受辐照区域的边缘。由表面波引起的表面张力梯度和表面剪切波是光学和热力学之间相干耦合的结果。多晶硅中激光冲击波的平均传播速度为8.47×10 3 m / s,实验得出的结论是,激光冲击波压力峰值呈指数形式分布在多晶硅中。

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