graphene nanostructures
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2021 ◽  
Vol 2 (4) ◽  
pp. 041304
Author(s):  
Raghav Garg ◽  
Daniel San Roman ◽  
Yingqiao Wang ◽  
Devora Cohen-Karni ◽  
Tzahi Cohen-Karni

Author(s):  
Sofia Georgitsopoulou ◽  
Athina Angelopoulou ◽  
Ligeri Papaioannou ◽  
Vasilios Georgakilas ◽  
Konstantinos Avgoustakis

2021 ◽  
Vol 125 (39) ◽  
pp. 21503-21510
Author(s):  
François Aguillon ◽  
Dana Codruta Marinica ◽  
Andrei G. Borisov

Author(s):  
Sergei Feodosyev ◽  
Igor Gospodarev ◽  
Evgen Syrkin ◽  
Valentina Sirenko ◽  
Ivan Bondar ◽  
...  

Materials ◽  
2021 ◽  
Vol 14 (16) ◽  
pp. 4634
Author(s):  
Kaixi Bi ◽  
Jiliang Mu ◽  
Wenping Geng ◽  
Linyu Mei ◽  
Siyuan Zhou ◽  
...  

Graphene nanostructures are widely perceived as a promising material for fundamental components; their high-performance electronic properties offer the potential for the construction of graphene nanoelectronics. Numerous researchers have paid attention to the fabrication of graphene nanostructures, based on both top-down and bottom-up approaches. However, there are still some unavoidable challenges, such as smooth edges, uniform films without folds, and accurate dimension and location control. In this work, a direct writing method was reported for the in-situ preparation of a high-resolution graphene nanostructure of controllable size (the minimum feature size is about 15 nm), which combines the advantages of e-beam lithography and copper-catalyzed growth. By using the Fourier infrared absorption test, we found that the hydrogen and oxygen elements were disappearing due to knock-on displacement and the radiolysis effect. The graphene crystal is also formed via diffusion and the local heating effect between the e-beam and copper substrate, based on the Raman spectra test. This simple process for the in-situ synthesis of graphene nanostructures has many promising potential applications, including offering a way to make nanoelectrodes, NEMS cantilever resonant structures, nanophotonic devices and so on.


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