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国家自然科学基金(61205124)

作品数:2 被引量:20H指数:1
相关作者:孙晓雁沈正祥张锦龙王占山童广德更多>>
相关机构:同济大学教育部更多>>
发文基金:国家自然科学基金国家高技术研究发展计划国家重大科学仪器设备开发专项更多>>
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非绝热近场光学诱导平滑硅表面微结构的电场模拟
2014年
如何进一步降低超光滑光学元件表面缺陷是现代超精密光学元件制作技术研究的热点之一。在传统抛光方法的基础上,引入非绝热近场光学诱导平滑硅表面微结构这一新型方法,进一步去除超光滑抛光表面残留的纳米级表面微缺陷,降低表面粗糙度。通过建立超光滑硅表面的微结构几何模型,采用时域有限差分法对表面微结构凸起在532 nm激光作用下的局域电场增强进行数值模拟。对比不同尺度的微结构所激发的最大电场强度表明,在基底峰谷值小于25.5 nm时,随微结构尺度递增,所激发的局域电场强度最大值约呈线性增长;随微结构倾斜率的逐渐递增,电场强度最大值也呈递增趋势。通过对激光诱导表面微结构调制电场的数值模拟,构建了硅表面微结构诱导平滑的物理图像,为描绘激光辐照下非绝热近场光学诱导平滑表面微结构的物理过程提供了有力的理论支持。
孙晓雁沈正祥童广德张锦龙王占山沈正祥
关键词:近场光学超光滑时域有限差分光化学反应
The effect of an electric field on the thermomechanical damage of nodular defects in dielectric multilayer coatings irradiated by nanosecond laser pulses被引量:20
2013年
Thermomechanical damage of nodules in dielectric multilayer coatings that are irradiated by nanosecond laser pulses has been interpreted with respect to mechanical properties and electric-field enhancement.However,the effect of electric-field enhancement in nodular damage,especially the influence of electric-field distributions,has never been directly demonstrated through experimental results,which prevents the achievement of a clear understanding of the damage process of nodular defects.Here,a systematic and comparative study was designed to reveal how electric-field distributions affect the damage behavior of nodules.To obtain reliable results,two series of artificial nodules with different geometries and film absorption characteristics were prepared from monodisperse silica microspheres.After establishing simplified geometrical models of the nodules,the electric-field enhancement was simulated using a three-dimensional finite-difference time-domain code.Then,the damage morphologies of the artificial nodules were directly compared with the simulated electric-field intensity profiles.For both series of nodules,the damage morphologies reproduced our simulated electric-field intensity distributions very well.These results indicated that the electric-field distribution was actually a bridge that connected the nodular mechanical properties to the final thermomechanical damage.Understanding of the damage mechanism of nodules was deepened by obtaining data on the influence of electric-field distributions on the damage behavior of nodules.
Xinbin ChengJinlong ZhangTao DingZeyong WeiHongqiang LiZhanshan Wang
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