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Investigation of Electrochemical Oxidation Behaviors and Mechanism of Single-Crystal Silicon (100) Wafer under Potentiostatic Mode

机译:电位模式下单晶硅(100)晶片电化学氧化行为的研究

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摘要

Electrochemical oxidation (ECO) has been used widely to oxidize single crystal Si wafers. Aiming at optimizing the ECO assisted machining methods, the oxidation behaviors of single- crystal silicon (100) wafer under potentiostatic mode are experimentally investigated. It is shown that the Si wafer can be electrochemically oxidized and the oxidized film thickness reaches to 239.6 nanometers in 20 min. The hardness of the oxidized surface is reduced by more than 50 percent of the original surface. The results indicate that the oxide thickness and the hardness can be controlled by changing the voltage. Based on the experimental findings, a hypothesis on the ECO mechanism under potentiostatic mode was proposed to explain the fluctuations of current density under specific applied voltage. The occurrence of the multiple peaks in the current density curve during the oxidation process is due to the formation of discharge channels, which was initiated from the defects at the interface between the oxide bottom and the substrate. This breaks the electrical isolation and leads to the discontinuous growth of the electrochemical oxide layer. The present work contributes to the fundamental understanding of the ECO behaviors for the single-crystal Si (100) wafer under potentiostatic mode.
机译:电化学氧化(ECO)被广泛用于氧化单晶Si晶片。旨在优化ECO辅助加工方法,在实验研究电位模式下单晶硅(100)晶片的氧化行为。结果表明,Si晶片可以电化学氧化,并且在20分钟内氧化膜厚度达到239.6纳米。氧化表面的硬度降低了原始表面的50%以上。结果表明,可以通过改变电压来控制氧化物厚度和硬度。基于实验结果,提出了在电位模式下对ECO机理的假设,以解释特定施加电压下电流密度的波动。在氧化过程中,电流密度曲线中的多个峰的发生是由于放电通道的形成,其被从氧化物底部和基板之间的界面处的缺陷引发。这断断了电学隔离并导致电化学氧化物层的不连续生长。目前的工作有助于在电位模式下对单晶Si(100)晶圆的ECO行为的基本理解。

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