University of Strasbourg, CNRS, ISIS UMR 7006, 8 Allée Gaspard Monge, F-67000, Strasbourg, France.
Adv Mater. 2018 May;30(18):e1706103. doi: 10.1002/adma.201706103. Epub 2018 Feb 14.
van der Waals heterostructures, composed of vertically stacked inorganic 2D materials, represent an ideal platform to demonstrate novel device architectures and to fabricate on-demand materials. The incorporation of organic molecules within these systems holds an immense potential, since, while nature offers a finite number of 2D materials, an almost unlimited variety of molecules can be designed and synthesized with predictable functionalities. The possibilities offered by systems in which continuous molecular layers are interfaced with inorganic 2D materials to form hybrid organic/inorganic van der Waals heterostructures are emphasized. Similar to their inorganic counterpart, the hybrid structures have been exploited to put forward novel device architectures, such as antiambipolar transistors and barristors. Moreover, specific molecular groups can be employed to modify intrinsic properties and confer new capabilities to 2D materials. In particular, it is highlighted how molecular self-assembly at the surface of 2D materials can be mastered to achieve precise control over position and density of (molecular) functional groups, paving the way for a new class of hybrid functional materials whose final properties can be selected by careful molecular design.
范德华异质结构由垂直堆叠的无机 2D 材料组成,是展示新型器件结构和按需制造材料的理想平台。将有机分子纳入这些系统具有巨大的潜力,因为虽然自然界提供了有限数量的 2D 材料,但几乎可以设计和合成具有可预测功能的无限多种分子。强调了连续分子层与无机 2D 材料界面形成混合有机/无机范德华异质结构的系统所提供的可能性。与无机对应物类似,混合结构已被用于提出新型器件结构,例如反双极晶体管和 barristors。此外,还可以使用特定的分子基团来修饰固有特性并赋予 2D 材料新的功能。特别是,重点介绍了如何掌握 2D 材料表面的分子自组装,以实现对(分子)功能基团位置和密度的精确控制,为一类新的混合功能材料铺平道路,其最终性能可以通过精心的分子设计进行选择。