Physikalisches Institut, Goethe-Universität, Max-von-Laue-Str. 1, D-60438 Frankfurt am Main, Germany.
Nanotechnology. 2017 Oct 13;28(41):415302. doi: 10.1088/1361-6528/aa8619. Epub 2017 Aug 14.
The fabrication of nanopatterned multilayers, as used in optical and magnetic applications, is usually achieved by two independent steps, which consist in the preparation of multilayer films and in the successive patterning by means of lithography and etching processes. Here we show that multilayer nanostructures can be fabricated by using focused electron beam induced deposition (FEBID), which allows the direct writing of nanostructures of any desired shape with nanoscale resolution. In particular, [Formula: see text] multilayers are prepared by the alternating deposition from the metal carbonyl precursors, [Formula: see text] and [Formula: see text], and neopentasilane, [Formula: see text]. The ability to fabricate nanopatterned multilayers by FEBID is of interest for the realization of hyperbolic metamaterials and related nanodevices. In a second experiment, we treated the multilayers by low-energy electron irradiation in order to induce atomic species intermixing with the purpose to obtain ternary nanostructured compounds. Transmission electron microscopy and electrical transport measurements indicate that in thick multilayers, (n = 12), the intermixing is only partial, taking place mainly in the upper part of the structures. However, for thin multilayers, (n = 2), the intermixing is such that a transformation into the L2 phase of the CoFeSi Heusler compound takes place over the whole sample volume.
用于光学和磁性应用的纳米图案化多层结构的制造通常通过两个独立的步骤来实现,这两个步骤包括多层膜的制备以及通过光刻和刻蚀工艺进行的连续图案化。在这里,我们展示了可以通过使用聚焦电子束诱导沉积(FEBID)来制造多层纳米结构,FEBID 允许以纳米级分辨率直接写入任何所需形状的纳米结构。具体来说,通过交替沉积金属羰基前体[Formula: see text]和[Formula: see text]以及正戊硅烷[Formula: see text]来制备[Formula: see text]多层结构。通过 FEBID 制造纳米图案化多层结构的能力对于实现双曲超材料和相关纳米器件具有重要意义。在第二个实验中,我们通过低能电子辐照处理多层结构,目的是诱导原子物种混合,以获得三元纳米结构化合物。透射电子显微镜和输运测量表明,在厚的多层结构(n = 12)中,混合仅部分发生,主要发生在结构的上部。然而,对于薄的多层结构(n = 2),混合程度如此之高,以至于整个样品体积都发生了 CoFeSi Heusler 化合物的 L2 相转变。