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Effect of ozone concentration on silicon surface passivation by atomic layer deposited Al2O3

机译:臭氧浓度对原子层沉积Al2O3钝化硅表面钝化的影响

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摘要

Abstract We study the impact of ozone-based Al2O3 Atomic Layer Deposition (ALD) on the surface passivation quality of crystalline silicon. We show that the passivation quality strongly depends on the ozone concentration: the higher ozone concentration results in lower interface defect density and thereby improved passivation. In contrast to previous studies, our results reveal that too high interface hydrogen content can be detrimental to the passivation. The interface hydrogen concentration can be optimized by the ozone-based process; however, the use of pure ozone increases the harmful carbon concentration in the film. Here we demonstrate that low carbon and optimal hydrogen concentration can be achieved by a single process combining the water- and ozone-based reactions. This process results in an interface defect density of 2 × 1011 eV−1 cm−2, and maximum surface recombination velocities of 7.1 cm/s and 10 cm/s, after annealing and after an additional firing at 800 °C, respectively. In addition, our results suggest that the effective oxide charge density can be optimized in a simple way by varying the ozone concentration and by injecting water to the ozone process.
机译:摘要我们研究了基于臭氧的Al2O3原子层沉积(ALD)对晶体硅表面钝化质量的影响。我们显示钝化质量很大程度上取决于臭氧浓度:较高的臭氧浓度会导致较低的界面缺陷密度,从而改善钝化效果。与以前的研究相比,我们的结果表明,界面氢含量太高可能会对钝化有害。界面氢浓度可以通过基于臭氧的工艺来优化;但是,使用纯臭氧会增加薄膜中有害的碳浓度。在这里,我们证明了通过结合水基和臭氧基反应的单一过程可以实现低碳和最佳氢浓度。此过程分别导致退火后和在800°C额外烧制后的界面缺陷密度为2×1011 eV-1 cm-2,最大表面复合速度为7.1 cm / s和10 cm / s。另外,我们的结果表明,可以通过改变臭氧浓度和向臭氧过程注入水以简单的方式优化有效氧化物的电荷密度。

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