Huang Zhujun, Cuniberto Edoardo, Park Suji, Kisslinger Kim, Wu Qin, Taniguchi Takashi, Watanabe Kenji, Yager Kevin G, Shahrjerdi Davood
Electrical and Computer Engineering, New York University, Brooklyn, NY, 11201, USA.
Center for Functional Nanomaterials, Brookhaven National Laboratory, Upton, NY, 11973, USA.
Small. 2022 May;18(20):e2201248. doi: 10.1002/smll.202201248. Epub 2022 Apr 7.
Heterostructures obtained from layered assembly of 2D materials such as graphene and hexagonal boron nitride have potential in the development of new electronic devices. Whereas various materials techniques can now produce macroscopic scale graphene, the construction of similar size heterostructures with atomically clean interfaces is still unrealized. A primary barrier has been the inability to remove polymeric residues from the interfaces that arise between layers when fabricating heterostructures. Here, the interface cleaning problem of polymer-contaminated heterostructures is experimentally studied from an energy viewpoint. With this approach, it is established that the interface cleaning mechanism involves a combination of thermally activated polymer residue mobilization and their mechanical actuation. This framework allows a systematic approach for fabricating record large-area clean heterostructures from polymer-contaminated graphene. These heterostructures provide state-of-the-art electronic performance. This study opens new strategies for the scalable production of layered materials heterostructures.
通过石墨烯和六方氮化硼等二维材料的分层组装获得的异质结构在新型电子器件的开发中具有潜力。尽管目前各种材料技术能够制备宏观尺度的石墨烯,但构建具有原子级清洁界面的类似尺寸异质结构仍未实现。一个主要障碍是在制造异质结构时无法去除层间界面处产生的聚合物残留物。在此,从能量角度对聚合物污染的异质结构的界面清洁问题进行了实验研究。通过这种方法,确定了界面清洁机制涉及热激活聚合物残留物的迁移及其机械驱动的组合。该框架为从聚合物污染的石墨烯制备创纪录的大面积清洁异质结构提供了一种系统方法。这些异质结构具有一流的电子性能。这项研究为分层材料异质结构的可扩展生产开辟了新策略。