俄歇电子能谱
蚀刻(微加工)
材料科学
沉积(地质)
抵抗
电子束光刻
纳米材料
分析化学(期刊)
纳米技术
扫描电子显微镜
电子束诱导沉积
化学
透射电子显微镜
扫描透射电子显微镜
复合材料
物理
生物
色谱法
核物理学
沉积物
古生物学
图层(电子)
作者
Elif Bilgilisoy,Jo-Chi Yu,Christian Preischl,Lisa McElwee‐White,Hans‐Peter Steinrück,Hubertus Marbach
标识
DOI:10.1021/acsanm.1c04481
摘要
The deposition of nanoscaled structures with a desired shape on the intended position of the substrate material is crucial for nanomaterial applications. Electron beam-induced deposition with a highly focused beam enables achievement of high accuracy and precision in this respect. Hence, we investigated the focused-electron-beam-induced deposition of Ru-containing deposits on SiO2 and sputter-cleaned silicon in ultrahigh vacuum to achieve comparably clean and morphologically well-defined Ru nanomaterials, which is relevant especially in the field of mask repair for extreme ultraviolet lithography. The precursor Ru(CO)4I2 was held at 340–345 K, and the applied electron doses were varied from 1.56 to 9.36 C/cm2 using a focused electron beam (5 keV, 1.5 nA, and 10 nm diameter). Local Auger electron spectroscopy along with subsequent sophisticated fitting procedures not only revealed the elemental composition but also enabled determination of the thickness of the fabricated deposits. Ru contents of up to 56% can be achieved at lower electron doses; at higher doses, the Ru content decreases to 45% and simultaneously the content increases. The initially lower I content is attributed to simultaneous focused electron beam-induced etching, which is found to be competing with the deposition process. The etching is evidenced by atomic force microscopy, where the structures are observed to have negative apparent height for low electron doses. With increasing electron doses, the deposits exhibit positive apparent heights because the etching is less pronounced at higher electron doses, once the Ru surface coverage has increased. The high Ru content and difficult balance between electron-induced deposition and etching considerably expand the possibilities of engineering nanostructured materials.
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