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Understanding the surface diffusion processes during magnetron sputter-deposition of complex oxide Mg-Al-O thin films

机译:了解复杂氧化物Mg-Al-O薄膜的磁控溅射沉积过程中的表面扩散过程

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摘要

It is known that film structure may change dramatically with the extent of surface diffusion during the film growth process. In the present work, surface diffusion, induced thermally or activated by energetic impacts, is investigated theoretically under conditions appropriate for magnetron sputter-deposition of Mg-Al-O thin films with varying stoichiometry. The distribution of surface diffusion energy barriers available to the system was determined for each stoichiometry, which allowed assessing in a qualitative way how much surface diffusion will take place on the time scale available between deposition events. The activation energy barriers increase with the Al concentration in the film, and therefore, the surface diffusion rates in the time frame of typical deposition rates drop, which can explain the decrease in crystallinity in the film structure and the transition to amorphous structure. The deposition process and the immediate surface diffusion enhanced by the energetic adatoms are simulated by means of a molecular dynamics model. The longer-time thermal surface diffusion and the energy landscape are studied by the temperature accelerated dynamics method, applied in an approximate way. The surface diffusion enhanced by the energetic impacts appears to be very important for the film structure in the low-temperature deposition regime.
机译:众所周知,在膜生长过程中,膜结构可能会随着表面扩散程度而发生巨大变化。在本工作中,理论上是在适合于以化学计量比变化的Mg-Al-O薄膜进行磁控溅射沉积的条件下,对由热诱导或由高能冲击激活的表面扩散进行了研究。对于每种化学计量,确定系统可用的表面扩散能垒的分布,这允许以定性方式评估在沉积事件之间的可用时间尺度上将发生多少表面扩散。活化能垒随着膜中Al浓度的增加而增加,因此,典型沉积速率时间范围内的表面扩散速率下降,这可以解释膜结构中结晶度的下降以及向非晶结构的转变。通过分子动力学模型模拟了由高能原子增强的沉积过程和表面立即扩散。通过温度加速动力学方法研究了较长时间的热表面扩散和能量分布,并以近似的方式对其进行了应用。由高能冲击增强的表面扩散对于低温沉积方式中的膜结构似乎非常重要。

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