Effects of ultraviolet nanosecond laser irradiation on structural modification and optical transmission of single layer graphene

2017 ◽  
Vol 398 ◽  
pp. 89-96 ◽  
Author(s):  
Chunhong Li ◽  
Xiaoli Kang ◽  
Qihua Zhu ◽  
Wanguo Zheng
Author(s):  
Somayeh Mortazavi ◽  
Mahmoud Mollabashi ◽  
Rasoul Barri ◽  
Jesus Nieto Pescador ◽  
Lars Gundlach ◽  
...  

2017 ◽  
Vol 111 (24) ◽  
pp. 241901 ◽  
Author(s):  
Chen Cheng ◽  
Ruiyun He ◽  
Carolina Romero ◽  
Javier R. Vázquez de Aldana ◽  
Feng Chen

Author(s):  
Mohd ‘Azizir-Rahim Mukri ◽  
Mohd Syafiq Elias ◽  
Madzlan Aziz ◽  
Masaki Tanemura ◽  
Mohd Zamri Mohd Yusop

A single graphene layer is superior many ways preferably in electronic devices application. However, mild modification of the graphene network could open a new potential to the ultrathin graphene membrane. Moreover, recent studies demonstrated that a few simple techniques could generate and control the nanopores size on single layer graphene sheet simultaneously. This review paper will discuss all potential techniques that are capable to generate nanopores structure on the pristine single layer graphene network.


2018 ◽  
Vol 428 ◽  
pp. 94-97 ◽  
Author(s):  
Somayeh Mortazavi ◽  
Mahmoud Mollabashi ◽  
S. Ismat Shah

2019 ◽  
Vol 33 (31) ◽  
pp. 1950384
Author(s):  
Di Lu ◽  
Yu-E Yang ◽  
Weichun Zhang ◽  
Caixia Wang ◽  
Jining Fang ◽  
...  

We have investigated Raman spectra of the G and 2D lines of a single-layer graphene (SLG) with metallic contacts. The shift of the G and 2D lines is correlated to two different factors. Before performing annealing treatment or annealing under low temperature, the electron transfer on graphene surface is dominated by nonuniform strain effect. As the annealing treatment is enhanced, however, a suitable annealing treatment can eliminate the nonuniform strain effect where the relative work function (WF) between graphene and metal becomes a main factor to determine electronic transfer. Moreover, it is confirmed that the optimized annealing treatment can also decrease effectively the structural defect and induced disorder in graphene due to metallic contacts.


2021 ◽  
Vol 7 (9) ◽  
pp. eabf0116
Author(s):  
Shiqi Huang ◽  
Shaoxian Li ◽  
Luis Francisco Villalobos ◽  
Mostapha Dakhchoune ◽  
Marina Micari ◽  
...  

Etching single-layer graphene to incorporate a high pore density with sub-angstrom precision in molecular differentiation is critical to realize the promising high-flux separation of similar-sized gas molecules, e.g., CO2 from N2. However, rapid etching kinetics needed to achieve the high pore density is challenging to control for such precision. Here, we report a millisecond carbon gasification chemistry incorporating high density (>1012 cm−2) of functional oxygen clusters that then evolve in CO2-sieving vacancy defects under controlled and predictable gasification conditions. A statistical distribution of nanopore lattice isomers is observed, in good agreement with the theoretical solution to the isomer cataloging problem. The gasification technique is scalable, and a centimeter-scale membrane is demonstrated. Last, molecular cutoff could be adjusted by 0.1 Å by in situ expansion of the vacancy defects in an O2 atmosphere. Large CO2 and O2 permeances (>10,000 and 1000 GPU, respectively) are demonstrated accompanying attractive CO2/N2 and O2/N2 selectivities.


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