The effects of fluorination and hydrogenation on the physical properties of two-dimensional (111)-oriented cubic boron nitride nanosheets

2021 ◽  
Vol 718 ◽  
pp. 138484
Author(s):  
Jia Li ◽  
YongHui Du ◽  
Miao Zhang ◽  
Lili Gao ◽  
YuanYe Tian ◽  
...  
Nanoscale ◽  
2018 ◽  
Vol 10 (29) ◽  
pp. 14073-14081 ◽  
Author(s):  
Yonghui Zhang ◽  
Chun Chan ◽  
Zhen Li ◽  
Jiale Ma ◽  
Qiangqiang Meng ◽  
...  

Atomically thin boron nitride nanosheets are important two-dimensional nanomaterials with great potential in biomedical applications.


2020 ◽  
Vol 11 (1) ◽  
Author(s):  
Gwangwoo Kim ◽  
Kyung Yeol Ma ◽  
Minsu Park ◽  
Minsu Kim ◽  
Jonghyuk Jeon ◽  
...  

Abstract Atomically sharp heterojunctions in lateral two-dimensional heterostructures can provide the narrowest one-dimensional functionalities driven by unusual interfacial electronic states. For instance, the highly controlled growth of patchworks of graphene and hexagonal boron nitride (h-BN) would be a potential platform to explore unknown electronic, thermal, spin or optoelectronic property. However, to date, the possible emergence of physical properties and functionalities monitored by the interfaces between metallic graphene and insulating h-BN remains largely unexplored. Here, we demonstrate a blue emitting atomic-resolved heterojunction between graphene and h-BN. Such emission is tentatively attributed to localized energy states formed at the disordered boundaries of h-BN and graphene. The weak blue emission at the heterojunctions in simple in-plane heterostructures of h-BN and graphene can be enhanced by increasing the density of the interface in graphene quantum dots array embedded in the h-BN monolayer. This work suggests that the narrowest, atomically resolved heterojunctions of in-plane two-dimensional heterostructures provides a future playground for optoelectronics.


2012 ◽  
Vol 38 (3) ◽  
pp. 2187-2193 ◽  
Author(s):  
Hilmi Yurdakul ◽  
Yapıncak Göncü ◽  
Oya Durukan ◽  
Atakan Akay ◽  
A. Tuğrul Seyhan ◽  
...  

Micromachines ◽  
2021 ◽  
Vol 12 (8) ◽  
pp. 906
Author(s):  
Mansoor H. Alshehri

Two-dimensional nanomaterials, such as graphene and hexagonal boron nitride nanosheets, have attracted tremendous interest in the research community and as a starting point for the development of nanotechnology. Using classical applied mathematical modeling, we derive explicit analytical expressions to determine the binding energies of noble metals, including copper, silver, gold, platinum and iridium (Cu, Ag, Au, Pt and Ir) atoms, on graphene and hexagonal boron nitride nanosheets. We adopt the 6–12 Lennard–Jones potential function, together with the continuous approach, to determine the preferred minimum energy position of an offset metal atom above the surface of the graphene and hexagonal boron nitride nanosheets. The main results of this study are analytical expressions of the interaction energies, which we then utilize to report the mechanism of adsorption of the metal atoms on graphene and hexagonal boron nitride surfaces. The results show that the minimum binding energy occured when Cu, Ag, Au, Pt and Ir were set at perpendicular distances in the region from 3.302 Å to 3.683 Å above the nanosheet surface, which correspond to adsorption energies in the region ranging from 0.842 to 2.978 (kcal/mol). Our results might assist in providing information on the interaction energies between the metal atoms and the two-dimensional nanomaterials.


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