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The Neck Growth Mechanisms in Low Energy Laser Sintering of Gold Nanoparticles - A Molecular Dynamics Simulation Study

机译:金纳米颗粒低能激光烧结颈部生长机制 - 分子动力学模拟研究

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Molecular Dynamics simulations were employed to investigate the mechanism and kinetics of the sintering of two crystalline gold nanoparticles (4.4-10.0nm) induced by low energy laser heating. At low temperature (300K), sintering can occur between two bare nanoparticles by elastic and plastic deformations driven by strong local potential gradients. This initial neck growth occur very fast ( < 150ps), therefore they are essentially insensitive to laser irradiation. This paper focuses on the subsequent longer time scale intermediate neck growth process induced by laser heating. The classical diffusion based neck growth model is modified to predict the time resolved neck growth during continuous heating with the diffusion coefficients and surface tension extracted from MD simulation. The diffusion model underestimates the neck growth rate for smaller particles (5.4nm) while satisfactory agreement is obtained for larger ones (l0nm). The deviation is due to the ultra-fine size effect of below l0nm particles. Possible mechanisms were discussed.
机译:使用分子动力学模拟来研究通过低能量激光加热诱导的两个结晶金纳米颗粒(4.4-10.0nm)烧结的机制和动力学。在低温(300k)时,通过强大的局部电位梯度驱动的弹性和塑性变形,可以在两个裸纳米颗粒之间发生烧结。这种初始颈部生长出现非常快(<150ps),因此它们对激光照射基本上不敏感。本文侧重于激光加热诱导的随后较长时间尺度中间颈部生长过程。经典扩散的颈部生长模型被修改为预测连续加热期间分辨的颈部生长与MD模拟提取的扩散系数和表面张力。扩散模型低估了较小颗粒(5.4nm)的颈部生长速率,同时获得较大的(L0nm)的令人满意的协议。偏差是由于L0NM颗粒以下的超细尺寸效果。讨论了可能的机制。

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