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通过软印章对硅表面进行平行局部阳极氧化。

Parallel-local anodic oxidation of silicon surfaces by soft stamps.

作者信息

Albonetti Cristiano, Martinez Javier, Losilla Nuria S, Greco Pierpaolo, Cavallini Massimiliano, Borgatti Francesco, Montecchi Monica, Pasquali Luca, Garcia Ricardo, Biscarini Fabio

机构信息

CNR-Istituto per lo Studio dei Materiali Nanostrutturati (ISMN), Via P Gobetti 101, I-40129 Bologna, Italy.

出版信息

Nanotechnology. 2008 Oct 29;19(43):435303. doi: 10.1088/0957-4484/19/43/435303. Epub 2008 Sep 22.

Abstract

We investigate the fabrication of nanometric patterns on silicon surfaces by using the parallel-local anodic oxidation technique with soft stamps. This method yields silicon oxide nanostructures 15 nm high, namely at least five times higher than the nanostructures made with local anodic oxidation using atomic force microscopy, and thanks to the size of the stamp enables one to pattern the surface across a centimetre length scale. To implement this technique, we built a machine to bring the metallized polydimethylsiloxane stamp in contact with the silicon surface, subsequently inserted in a sealed chamber with controlled relative humidity. The oxide nanostructures are fabricated when a bias voltage of 36 V is applied between the stamp and the silicon for 2 min, with a relative humidity of 90%. The flexibility of the stamp enables a homogeneous conformal contact with the silicon surface, resulting in an excellent reproducibility of the process. Moreover, by means of two subsequent oxidations with the same stamp and just rotating the sample, we are able to fabricate complex nanostructures. Finally, a detailed study of the oxidation mechanism, also using a finite element analysis, has been performed to understand the underlying mechanism.

摘要

我们研究了使用带有软印章的平行局部阳极氧化技术在硅表面制备纳米图案。该方法可产生高度为15纳米的氧化硅纳米结构,比使用原子力显微镜进行局部阳极氧化制备的纳米结构至少高五倍,并且由于印章的尺寸,能够在厘米长度尺度上对表面进行图案化。为了实施该技术,我们构建了一台机器,使金属化的聚二甲基硅氧烷印章与硅表面接触,随后将其插入具有受控相对湿度的密封腔室中。当在印章和硅之间施加36 V的偏置电压2分钟,相对湿度为90%时,即可制备出氧化纳米结构。印章的柔韧性使其能够与硅表面实现均匀的共形接触,从而实现该工艺的出色再现性。此外,通过使用同一印章进行两次后续氧化并仅旋转样品,我们能够制备复杂的纳米结构。最后,还使用有限元分析对氧化机理进行了详细研究,以了解其潜在机制。

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