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Fluidic Flow Assisted Deterministic Folding of Van der Waals Materials

机译:Van der Waals材料的流体流动辅助确定性折叠

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摘要

Origami offers a distinct approach for designing and engineering new material structures and properties. The folding and stacking of atomically thin van der Waals (vdW) materials, for example, can lead to intriguing new physical properties including bandgap tuning, Van Hove singularity, and superconductivity. On the other hand, achieving well-controlled folding of vdW materials with high spatial precision has been extremely challenging and difficult to scale toward large areas. Here, a deterministic technique is reported to fold vdW materials at a defined position and direction using microfluidic forces. Electron beam lithography (EBL) is utilized to define the folding area, which allows precise control of the folding geometry, direction, and position beyond 100 nm resolution. Using this technique, single-atomic-layer vdW materials or their heterostructures can be folded without the need for any external supporting layers in the final folded structure. In addition, arrays of patterns can be folded across a large area using this technique and electronic devices that can reconfigure device functionalities through folding are also demonstrated. Such scalable formation of folded vdW material structures with high precision can lead to the creation of new atomic-scale materials and superlattices as well as opening the door to realizing foldable and reconfigurable electronics.
机译:折纸提供了一种独特的方法来设计和工程化新的材料结构和特性。例如,原子稀薄的范德华(vdW)材料的折叠和堆叠会引起新的物理特性,包括带隙调整,范霍夫奇异性和超导性。另一方面,实现具有高空间精度的vdW材料的受控折叠非常困难,并且很难扩展到大面积。在这里,据报道,确定性技术使用微流体力将vdW材料折叠在定义的位置和方向上。电子束光刻(EBL)用于定义折叠区域,从而可以精确控制超过100 nm分辨率的折叠几何形状,方向和位置。使用这种技术,可以折叠单原子层的vdW材料或其异质结构,而在最终的折叠结构中不需要任何外部支撑层。另外,使用该技术可以在大面积上折叠图案阵列,并且还展示了可以通过折叠来重新配置设备功能的电子设备。折叠式vdW材料结构的这种可缩放的高精度结构可导致创建新的原子级材料和超晶格,并为实现可折叠和可重新配置的电子产品打开大门。

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