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首页> 外文期刊>Science Advances >Neat monolayer tiling of molecularly thin two-dimensional materials in 1 min
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Neat monolayer tiling of molecularly thin two-dimensional materials in 1 min

机译:在1分钟内对分子薄的二维材料进行整齐的单层平铺

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Controlled arrangement of molecularly thin two-dimensional (2D) materials on a substrate, particularly into precisely organized mono- and multilayer structures, is a key to design a nanodevice using their unique and enhanced physical properties. Several techniques such as mechanical transfer process and Langmuir-Blodgett deposition have been applied for this purpose, but they have severe restrictions for large-scale practical applications, for example, limited processable area and long fabrication time, requiring skilled multistep operations. We report a facile one-pot spin-coating method to realize dense monolayer tiling of various 2D materials, such as graphene and metal oxide nanosheets, within 1 min over a wide area (for example, a 30-mmφ substrate). Centrifugal force drives the nanosheets in a thin fluid layer to the substrate edge where they are packed edge to edge all the way to the central region, without forming overlaps. We investigated the relationship between precursor concentration, rotation speed, and ultraviolet-visible absorbance and developed an effective method to optimize the parameters for neat monolayer films. The multilayer buildup is feasible by repeating the spin-coating process combined with a heat treatment at moderate temperature. This versatile solution-based technique will provide both fundamental and practical advancements in the rapid large-scale production of artificial lattice-like films and nanodevices based on 2D materials.
机译:分子薄的二维(2D)材料在基板上的受控排列,尤其是精确组织的单层和多层结构,是利用其独特且增强的物理特性设计纳米器件的关键。为此已采用了多种技术,例如机械转移工艺和Langmuir-Blodgett沉积,但是它们对大规模的实际应用有严格的限制,例如,有限的可加工区域和较长的制造时间,需要熟练的多步操作。我们报道了一种简便的一锅旋涂方法,可在1分钟内在宽广的区域(例如30mmφ的基板)上实现各种2D材料的密集单层平铺,例如石墨烯和金属氧化物纳米片。离心力将薄的流体层中的纳米片驱动到基板边缘,在此处将它们沿边缘一直堆积到中心区域,而不会形成重叠。我们研究了前驱物浓度,转速和紫外可见吸收率之间的关系,并开发了一种有效的方法来优化纯净单层膜的参数。通过重复旋涂工艺和在中等温度下的热处理相结合,多层堆积是可行的。这种基于解决方案的通用技术将为快速大规模生产基于2D材料的人造晶格状薄膜和纳米器件提供基础和实际的进步。

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