liquid phase exfoliation
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ACS Omega ◽  
2021 ◽  
Author(s):  
Durai Murugan Kandhasamy ◽  
Paulpandian Muthu Mareeswaran ◽  
Selvaraju Chellappan ◽  
Dhenadhayalan Namasivayam ◽  
Afaf Aldahish ◽  
...  

2021 ◽  
pp. 2100567
Author(s):  
Jianlong Kang ◽  
Feicui Xu ◽  
Chen Zhang ◽  
Feng Li ◽  
Omar A. Al‐Hartomy ◽  
...  

Molecules ◽  
2021 ◽  
Vol 26 (23) ◽  
pp. 7371
Author(s):  
Lucía Martín-Pérez ◽  
Enrique Burzurí

Van der Waals magnetic materials are promising candidates for spintronics and testbeds for exotic magnetic phenomena in low dimensions. The two-dimensional (2D) limit in these materials is typically reached by mechanically breaking the van der Waals interactions between layers. Alternative approaches to producing large amounts of flakes rely on wet methods such as liquid-phase exfoliation (LPE). Here, we report an optimized route for obtaining monolayers of magnetic cylindrite by LPE. We show that the selection of exfoliation times is the determining factor in producing a statistically significant amount of monolayers while keeping relatively big flake areas (~1 µm2). We show that the cylindrite lattice is preserved in the flakes after LPE. To study the electron transport properties, we have fabricated field-effect transistors based on LPE cylindrite. Flakes are deterministically positioned between nanoscale electrodes by dielectrophoresis. We show that dielectrophoresis can selectively move the larger flakes into the devices. Cylindrite nanoscale flakes present a p-doped semiconducting behaviour, in agreement with the mechanically exfoliated counterparts. Alternating current (AC) admittance spectroscopy sheds light on the role played by potential barriers between different flakes in terms of electron transport properties. The present large-scale exfoliation and device fabrication strategy can be extrapolated to other families of magnetic materials.


2021 ◽  
pp. 177-185
Author(s):  
Mariam Gada ◽  
Mohammad Zaid ◽  
Mohd. Mudassir Husain ◽  
S. S. Islam

Nanomaterials ◽  
2021 ◽  
Vol 11 (12) ◽  
pp. 3253
Author(s):  
Freskida Goni ◽  
Angela Chemelli ◽  
Frank Uhlig

Liquid-phase exfoliation (LPE) is a widely used and promising method for the production of 2D nanomaterials because it can be scaled up relatively easily. Nevertheless, the yields achieved by this process are still low, ranging between 2% and 5%, which makes the large-scale production of these materials difficult. In this report, we investigate the cause of these low yields by examining the sonication-assisted LPE of graphene, boron nitride nanosheets (BNNSs), and molybdenum disulfide nanosheets (MoS2 NS). Our results show that the low yields are caused by an equilibrium that is formed between the exfoliated nanosheets and the flocculated ones during the sonication process. This study provides an understanding of this behaviour, which prevents further exfoliation of nanosheets. By avoiding this equilibrium, we were able to increase the total yields of graphene, BNNSs, and MoS2 NS up to 14%, 44%, and 29%, respectively. Here, we demonstrate a modified LPE process that leads to the high-yield production of 2D nanomaterials.


2021 ◽  
Vol 12 (6) ◽  
pp. 7404-7415

Exfoliation is a promising technique to obtain graphene from graphite. The search for suitable exfoliation solvents is currently underway. The quality of the solvents used for spontaneous exfoliation is determined by a simple thermodynamic model. The model shows that the solvation energy of the organic solvents is higher for NMP (-177.37 mJ m-2) than other nonpolar solvents. It also shows that the solvation energy is correlated with sheet deformation and surface excess. Four groups of effective solvents are identified, including amine-, sulfoxide-, halogen-benzene-based solvents, in addition to cyclic structures with the oxygen atom. One can predict and screen potential solvents for spontaneous graphene exfoliation based on the reported mechanism.


ACS Nano ◽  
2021 ◽  
Author(s):  
Vaishnavi J. Rao ◽  
Haoyuan Qi ◽  
Felix J. Berger ◽  
Sebastian Grieger ◽  
Ute Kaiser ◽  
...  

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