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大面积的石墨烯氧化物的极紫外光刻技术:基于空间分辨光还原法。

Large area extreme-UV lithography of graphene oxide via spatially resolved photoreduction.

机构信息

Dipartimento di Fisica, Università dell'Aquila, Via Vetoio, 67100, L'Aquila, Italy.

出版信息

Langmuir. 2012 Mar 27;28(12):5489-95. doi: 10.1021/la204637a. Epub 2012 Mar 13.

Abstract

The ability to pattern graphene over large areas with nanometer resolution is the current request for nanodevice fabrication at the industrial scale. Existing methods do not match high throughput with nanometer resolution. We propose a high-throughput resistless extreme-UV (EUV) photolithographic approach operating with sub-micrometer resolution on large area (~10 mm(2)) graphene oxide (GO) films via spatially resolved photoreduction. The efficiency of EUV photoreduction is tested with 46.9 nm coherent light produced by a table top capillary discharge plasma source. Irradiated samples are studied by X-ray photoemission spectroscopy (XPS) and micro-Raman Spectroscopy (μRS). XPS data show that 200 mJ/cm(2) EUV dose produces, onto pristine GO, a 6% increase of sp(2) carbon bonds and a 20% decrease of C-O bonds. μRS data demonstrate a photoreduction efficiency 2 orders of magnitude higher than the one reported in the literature for UV-assisted photoreduction. GO patterning is obtained modulating the EUV dose with a Lloyd's interferometer. The lithographic features consist of GO stripes with modulated reduction degree. Such modulation is investigated and demonstrated by μRS on patterns with 2 μm periodicity.

摘要

在大面积上以纳米分辨率对石墨烯进行图案化的能力是当前工业规模纳米器件制造的要求。现有的方法无法在纳米分辨率下实现高吞吐量。我们提出了一种高通量的无抗蚀剂极紫外(EUV)光刻方法,该方法通过空间分辨光还原在大面积(约 10mm²)氧化石墨烯(GO)薄膜上以亚微米分辨率运行。通过使用桌面毛细管放电等离子体源产生的 46.9nm 相干光测试 EUV 光还原的效率。通过 X 射线光电子能谱(XPS)和微拉曼光谱(μRS)研究辐照样品。XPS 数据表明,200mJ/cm²的 EUV 剂量在原始 GO 上产生 6%的 sp2 碳原子键增加和 20%的 C-O 键减少。μRS 数据表明,光还原效率比文献中报道的用于 UV 辅助光还原的效率高 2 个数量级。通过 Lloyd 干涉仪调制 EUV 剂量来获得 GO 图案化。光刻特征由具有调制还原度的 GO 条纹组成。通过μRS 在具有 2μm 周期性的图案上对这种调制进行了研究和证明。

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