Experimental and computational investigation of microcrack behavior under combined environments in monocrystalline Si

W. Huang, S. Bringuier, J. Paul, K. Simmons-Potter, K. Muralidharan, B. G. Potter
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Abstract

An investigation of microindenter-induced crack evolution with independent variation of both temperature and relative humidity has been pursued in PV-grade Si wafers. Under static tensile strain conditions, an increase in subcritical crack elongation with increasing atmospheric water content was observed. To provide further insight into the potential physical and chemical conditions at the microcrack tip, micro-Raman measurements were performed. Preliminary results confirm a spatial variation in the frequency of the primary Si vibrational resonance within the cracktip region, associated with local stress state, whose magnitude is influenced by environmental conditions during the period of applied static strain. The experimental effort was paired with molecular dynamics (MD) investigations of microcrack evolution in single-crystal Si to furnish additional insight into mechanical contributions to crack elongation. The MD results demonstrate that crack-tip energetics and associated crack elongation velocity and morphology are intimately related to the crack and applied strain orientations with respect to the principal crystallographic axes. The resulting elastic strain energy release rate and the stress-strain response of the Si under these conditions form the basis for preliminary micro-scale peridynamics (PD) simulations of microcrack development under constant applied strain. These efforts will be integrated with the experimental results to further inform the mechanisms contributing to this important degradation mode in Si-based photovoltaics.
复合环境下单晶Si微裂纹行为的实验与计算研究
研究了温度和相对湿度对pv级硅晶圆微压痕裂纹演化的影响。在静态拉伸应变条件下,随着大气含水量的增加,亚临界裂纹伸长率增加。为了进一步了解微裂纹尖端的潜在物理和化学条件,进行了微拉曼测量。初步结果证实,裂纹尖端区域内的原生Si振动共振频率存在空间变化,与局部应力状态有关,其大小受施加静应变期间环境条件的影响。实验成果与单晶Si微裂纹演化的分子动力学(MD)研究相结合,为裂纹延伸的力学贡献提供了额外的见解。MD结果表明,裂纹尖端的能量学和相关的裂纹延伸速度和形貌与裂纹和相对于主晶轴的外加应变方向密切相关。由此得到的弹性应变能释放率和Si在这些条件下的应力-应变响应为恒定应变下微裂纹发展的微尺度周动力学(PD)初步模拟奠定了基础。这些努力将与实验结果相结合,以进一步了解硅基光伏电池中这种重要降解模式的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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