Porous Graphene Membranes for Solute Separation via Reverse Osmosis and Electrodialysis

Author(s):  
Chengzhen Sun ◽  
Mei Liu ◽  
Hassan ◽  
Bofeng Bai
Nanomaterials ◽  
2018 ◽  
Vol 8 (10) ◽  
pp. 805 ◽  
Author(s):  
Zhongqiang Zhang ◽  
Fujian Zhang ◽  
Zhen Liu ◽  
Guanggui Cheng ◽  
Xiaodong Wang ◽  
...  

In this study, the reverse osmosis (RO) of a salt solution was investigated using a molecular dynamics method to explore the performance of a multilayer porous graphene membrane. The effects of the salt solution concentration, pressure, layer separation and pore offset on the RO performance of the membrane were investigated and the influences of the number of layers and the gradient structure were determined. The results show that as the salt solution concentration increases, the energy barrier of the water molecules passing through the bilayer porous graphene membranes changes slightly, indicating that the effect of the water flux on the membrane can be ignored. The salt rejection performance of the membrane improves with an increase in the concentration of the salt solution. When the pressure is increased, the energy barrier decreases, the water flux increases and the salt rejection decreases. When the layer separation of the bilayer porous graphene membrane is the same as the equilibrium spacing of the graphene membrane, the energy barrier is the lowest and the membrane water flux is the largest. The energy barrier of the bilayer porous graphene membrane increases with increasing layer separation, resulting in a decrease in the water flux of the membrane. The salt rejection increases with increasing layer separation. The water flux of the membrane decreases as the energy barrier increases with increasing pore offset and the salt rejection increases. The energy barrier effect is more pronounced for a larger number of graphene layers and the water flux of the membrane decreases because it is more difficult for the water molecules to pass through the porous graphene membrane. However, the salt rejection performance improves with the increase in the number of layers. The gradient pore structure enhances the energy barrier effect of the water molecules permeating through the membrane and the water flux of the membrane decreases. The salt rejection performance is improved by the gradient pore structure. The research results provide theoretical guidance for research on the RO performance of porous graphene membranes and the design of porous graphene membranes.


2020 ◽  
Vol 108 ◽  
pp. 107911
Author(s):  
Neha Tyagi ◽  
Chandrabhan Patel ◽  
Rachana Yogi ◽  
Neeraj K. Jaiswal

2018 ◽  
Vol 441 ◽  
pp. 631-638 ◽  
Author(s):  
Shuxian Wei ◽  
Sainan Zhou ◽  
Zhonghua Wu ◽  
Maohuai Wang ◽  
Zhaojie Wang ◽  
...  

2017 ◽  
Vol 28 (18) ◽  
pp. 184003 ◽  
Author(s):  
Michael S H Boutilier ◽  
Nicolas G Hadjiconstantinou ◽  
Rohit Karnik

Author(s):  
de Souza Figueiredo Katia Cecilia ◽  
de Jesus Barcelos Gustavo Feliciano ◽  
Ferlauto André Santarosa

Graphene membrane is a promising technology to help both carbon dioxide separation from flue gas and water desalination. This work reported the importance of membrane separation processes, the evolution of polymeric membranes before the discovery of graphene and how this material fits into this scenario. In addition, reverse osmosis and gas separations have been discussed as promising methods to reduce the occurrence of freshwater scarcity events and slow global warming. For all these separation techniques, the current state of graphene membranes technology and what advances might be brought by such one atom thick skin layer were presented, as well as the results of theoretical and experimental research. Finally, the challenges that still need to be overcome by this innovative technology as well as the perspectives were shown.


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