论文标题

MOS2堆栈二维转换为MOO3

On-Stack Two-Dimensional Conversion of MoS2 into MoO3

论文作者

Ko, Taeg Yeoung, Jeong, Areum, Kim, Wontaek, Lee, Jinhwan, Kim, Youngchan, Lee, Jung Eun, Ryu, Gyeong Hee, Park, Kwanghee, Kim, Dogyeong, Lee, Zonghoon, Lee, Min Hyung, Lee, Changgu, Ryu, Sunmin

论文摘要

现有二维(2D)材料的化学转化对于进一步扩展了实现各种功能异质结构所需的2D晶体调色板至关重要。在这项工作中,我们展示了单层结晶MOS2的2D“堆栈”化学转化为MOO3,具有精确的层控件,该控制层可以实现真正的2D MOO3和MOO3/MOO3/MOS2异质结构。为了最大程度地减少2D形态的扰动,采用了使用O2血浆的非热氧化。反应的早期阶段的特征是缺陷引起的拉曼峰,光致发光(PL)信号的剧烈淬火和原子力显微镜图像中的亚NM突起。当反应从上层到埋入的层时,PL和光学的第二次谐波产生信号显示了特征调制,显示出逐层转换。血浆生成的2D氧化物通过X射线光电子光谱证实为MOO3,发现是无定形的,但非常平坦,表面粗糙度为0.18 nm,可与1L MOS2相当。由于表面2D氧化物的保护,通过拉曼光谱量化的氧化速率降低了硫化物层的迅速降低,表现出伪自动的行为。如这项工作所示,可以将各种堆栈化学转化​​应用于其他2D材料,以形成原本难以置信的材料和复杂的异质结构,从而扩大2D材料构建块的调色板。

Chemical transformation of existing two-dimensional (2D) materials can be crucial in further expanding the 2D crystal palette required to realize various functional heterostructures. In this work, we demonstrate a 2D 'on-stack' chemical conversion of single-layer crystalline MoS2 into MoO3 with a precise layer control that enables truly 2D MoO3 and MoO3/MoS2 heterostructures. To minimize perturbation of the 2D morphology, a nonthermal oxidation using O2 plasma was employed. The early stage of the reaction was characterized by a defect-induced Raman peak, drastic quenching of photoluminescence (PL) signals and sub-nm protrusions in atomic force microscopy images. As the reaction proceeded from the uppermost layer to the buried layers, PL and optical second harmonic generation signals showed characteristic modulations revealing a layer-by-layer conversion. The plasma-generated 2D oxides, confirmed as MoO3 by x-ray photoelectron spectroscopy, were found to be amorphous but extremely flat with a surface roughness of 0.18 nm, comparable to that of 1L MoS2. The rate of oxidation quantified by Raman spectroscopy decreased very rapidly for buried sulfide layers due to protection by the surface 2D oxides, exhibiting a pseudo-self-limiting behavior. As exemplified in this work, various on-stack chemical transformations can be applied to other 2D materials in forming otherwise unobtainable materials and complex heterostructures, thus expanding the palette of 2D material building blocks.

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