Evolution analysis of EUV radiation from laser-produced tin plasmas based on a radiation hydrodynamics model

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Abstract

One of fundamental aims of extreme ultraviolet (EUV) lithography is to maximize brightness or conversion efficiency of laser energy to radiation at specific wavelengths from laser produced plasmas (LPPs) of specific elements for matching to available multilayer optical systems. Tin LPPs have been chosen for operation at a wavelength of 13.5 nm. For an investigation of EUV radiation of laser-produced tin plasmas, it is crucial to study the related atomic processes and their evolution so as to reliably predict the optimum plasma and experimental conditions. Here, we present a simplified radiation hydrodynamic model based on the fluid dynamic equations and the radiative transfer equation to rapidly investigate the evolution of radiation properties and dynamics in laser-produced tin plasmas. The self-absorption features of EUV spectra measured at an angle of 45° to the direction of plasma expansion have been successfully simulated and explained, and the evolution of some parameters, such as the plasma temperature, ion distribution and density, expansion size and velocity, have also been evaluated. Our results should be useful for further understanding of current research on extreme ultraviolet and soft X-ray source development for applications such as lithography, metrology and biological imaging.

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Su, M. G., Min, Q., Cao, S. Q., Sun, D. X., Hayden, P., O’Sullivan, G., & Dong, C. Z. (2017). Evolution analysis of EUV radiation from laser-produced tin plasmas based on a radiation hydrodynamics model. Scientific Reports, 7. https://doi.org/10.1038/srep45212

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