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绝缘体上硅衬底上掺杂剂自旋过程的工程设计。

Engineering of the spin on dopant process on silicon on insulator substrate.

作者信息

Barri Chiara, Mafakheri Erfan, Fagiani Luca, Tavani Giulio, Barzaghi Andrea, Chrastina Daniel, Fedorov Alexey, Frigerio Jacopo, Lodari Mario, Scotognella Francesco, Arduca Elisa, Abbarchi Marco, Perego Michele, Bollani Monica

机构信息

L-NESS, Department of Physics, Politecnico di Milano, Via Anzani 42, I-22100 Como, Italy.

IFN-CNR, LNESS laboratory, Como, Italy.

出版信息

Nanotechnology. 2021 Jan 8;32(2):025303. doi: 10.1088/1361-6528/abbdda.

Abstract

We report on a systematic analysis of phosphorus diffusion in silicon on insulator thin film via spin-on-dopant process (SOD). This method is used to provide an impurity source for semiconductor junction fabrication. The dopant is first spread into the substrate via SOD and then diffused by a rapid thermal annealing process. The dopant concentration and electron mobility were characterized at room and low temperature by four-probe and Hall bar electrical measurements. Time-of-flight-secondary ion mass spectroscopy was performed to estimate the diffusion profile of phosphorus for different annealing treatments. We find that a high phosphorous concentration (greater than 10 atoms cm) with a limited diffusion of other chemical species and allowing to tune the electrical properties via annealing at high temperature for short time. The ease of implementation of the process, the low cost of the technique, the possibility to dope selectively and the uniform doping manufactured with statistical process control show that the methodology applied is very promising as an alternative to the conventional doping methods for the implementation of optoelectronic devices.

摘要

我们报告了通过旋涂掺杂工艺(SOD)对绝缘体上硅薄膜中磷扩散的系统分析。该方法用于为半导体结制造提供杂质源。掺杂剂首先通过SOD扩散到衬底中,然后通过快速热退火工艺进行扩散。通过四探针和霍尔条电测量在室温和低温下对掺杂剂浓度和电子迁移率进行了表征。进行飞行时间二次离子质谱分析以估计不同退火处理下磷的扩散分布。我们发现,在其他化学物种扩散有限的情况下,可实现高磷浓度(大于10原子/cm),并且能够通过短时间高温退火来调节电学性能。该工艺易于实施、技术成本低、能够进行选择性掺杂以及通过统计过程控制实现均匀掺杂,表明所应用的方法作为传统掺杂方法的替代方案,在光电器件制造方面非常有前景。

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