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Fabrication mechanism of friction-induced selective etching on Si(100) surface

机译:Si(100)表面摩擦诱导选择性刻蚀的制备机理

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摘要

As a maskless nanofabrication technique, friction-induced selective etching can easily produce nanopatterns on a Si(100) surface. Experimental results indicated that the height of the nanopatterns increased with the KOH etching time, while their width increased with the scratching load. It has also found that a contact pressure of 6.3 GPa is enough to fabricate a mask layer on the Si(100) surface. To understand the mechanism involved, the cross-sectional microstructure of a scratched area was examined, and the mask ability of the tip-disturbed silicon layer was studied. Transmission electron microscope observation and scanning Auger nanoprobe analysis suggested that the scratched area was covered by a thin superficial oxidation layer followed by a thick distorted (amorphous and deformed) layer in the subsurface. After the surface oxidation layer was removed by HF etching, the residual amorphous and deformed silicon layer on the scratched area can still serve as an etching mask in KOH solution. The results may help to develop a low-destructive, low-cost, and flexible nanofabrication technique suitable for machining of micro-mold and prototype fabrication in micro-systems.
机译:作为无掩模纳米制造技术,摩擦诱导的选择性蚀刻可以轻松在Si(100)表面上产生纳米图案。实验结果表明,纳米图案的高度随着KOH刻蚀时间的增加而增加,而宽度随着划痕载荷的增加而增加。还已经发现,6.3GPa的接触压力足以在Si(100)表面上制造掩模层。为了理解所涉及的机理,研究了划痕区域的横截面微观结构,并研究了尖端扰动的硅层的掩膜能力。透射电子显微镜观察和扫描俄歇纳米探针分析表明,划痕区域被表层薄氧化层覆盖,随后被地下厚的变形(非晶和变形)层覆盖。在通过HF蚀刻去除表面氧化层之后,在刮擦区域上残留的非晶和变形的硅层仍然可以用作KOH溶液中的蚀刻掩模。这些结果可能有助于开发一种低破坏性,低成本,灵活的纳米加工技术,该技术适用于微模具的加工和微系统中的原型加工。

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