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钝化硅表面的表面光电压动力学:衬底掺杂和表面终止的影响。

Surface photovoltage dynamics at passivated silicon surfaces: influence of substrate doping and surface termination.

作者信息

Pierucci Debora, Silly Mathieu G, Tissot Heloise, Hollander Philippe, Sirotti Fausto, Rochet Francois

机构信息

Synchrotron SOLEIL, L'Orme des Merisiers, Saint-Aubin, BP 48, F-91192 Gif-sur-Yvette, France.

Sorbonne Universités, UPMC Univ. Paris 06, and CNRS UMR 7614, Laboratoire de Chimie Physique Matière et Rayonnement (LCPMR), F-75005, Paris, France.

出版信息

Faraday Discuss. 2022 Aug 25;236(0):442-460. doi: 10.1039/d1fd00107h.

Abstract

We have monitored the temporal evolution of the band bending at controlled silicon surfaces after a fs laser pump excitation. Time-resolved surface photo-voltage (SPV) experiments were performed using time resolved photoemission spectroscopy with time resolution of about 30 ns. To disentangle the influence of doping and surface termination on SPV dynamics, we compare the results obtained on two surface terminations: the water saturated (H,OH)-Si(001) surface and the thermally oxidized Si(001) one. The SPV dynamics were explored as a function of laser fluence and as a function of time for the two surface terminations at given doping levels. The return to equilibrium involves a characteristic time in the 0.1 μs to 10 μs range, depending on the surface termination and bulk doping. Exploring several laser fluences, different SPV regimes were found for the two surface terminations at given doping levels. For low laser fluence the SPV dynamic follows the commonly accepted thermionic model. At higher fluence, the SPV signal reaches a saturation value, and if the fluence is further increased, the decay time of the SPV increases and can no longer be explained by a thermionic model alone.

摘要

我们监测了飞秒激光泵浦激发后,可控硅表面能带弯曲的时间演化。利用时间分辨光电子能谱进行了时间分辨表面光电压(SPV)实验,时间分辨率约为30纳秒。为了厘清掺杂和表面终止对SPV动力学的影响,我们比较了在两种表面终止条件下获得的结果:水饱和的(H,OH)-Si(001)表面和热氧化的Si(001)表面。在给定的掺杂水平下,研究了两种表面终止条件下SPV动力学随激光能量密度和时间的变化。恢复到平衡状态涉及0.1微秒到10微秒范围内的特征时间,这取决于表面终止条件和体掺杂。通过研究几种激光能量密度,在给定的掺杂水平下,发现两种表面终止条件存在不同的SPV状态。对于低激光能量密度,SPV动力学遵循普遍接受的热电子发射模型。在较高能量密度下,SPV信号达到饱和值,如果进一步增加能量密度,SPV的衰减时间会增加,并且不能再仅用热电子发射模型来解释。

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