| Literature DB >> 29018213 |
Benyu Qi1,2, Xiaofan He1,3, Gaofeng Zeng4, Yichang Pan5, Guihua Li1, Guojuan Liu1, Yanfeng Zhang1,3, Wei Chen1, Yuhan Sun6,7.
Abstract
To separate small molecules/species, it's crucial but still challenging to narrow the 2D-interspacing of graphene oxide (GO) membranes without damaging the membrane. Here the fast deposition ofEntities:
Year: 2017 PMID: 29018213 PMCID: PMC5635034 DOI: 10.1038/s41467-017-00990-x
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Electrophoresis deposition of graphene oxide on PSSHF. a Schematic of GO electrophoresis deposition on PSSHF with a circular electric field, b current variation with fixed DC voltages of V WE–V CE in the GO electrophoresis deposition, c CV curves of GO on the glass-carbon electrode at room temperature and d time dependence of voltages V WE–V CE and V CE in the three-electrode system for GO deposition with a V WE of 3.2 V
Fig. 2Morphology of ED-GO@PSSHF membrane. SEM images of a cross-section and c surface of ED-GO@PSSHF membrane, b optical image of PSSHFs and ED-GO@PSSHF, d atomic force microscopy (AFM) measurement of ED-GO surface, scale bars a 200 nm and c 2 μm
Fig. 3Structure analysis of ED-GO layers. a X-ray diffraction (XRD) patterns of pristine and ED-GO, b HRTEM cross-section image of ED-GO fragment (inset: fast Fourier transform of TEM image), AFM measurements of c pristine GO and d ED-GO bilayers and e layer height profiles of the GO bilayers (offsets made for clarity), scale bars b 10 nm, inset b 5 nm−1 and c, d 100 nm
Fig. 4Chemical and surface properties of pristine GO and ED-GO. The pristine GO and ED-GO samples measured by a FTIR spectroscopy, b XPS and c Raman spectroscopy; the static WCA of d GO membrane prepared by filtration, e ED-GO membrane and f graphene membrane prepared by filtration
Fig. 5Gas permeation performance of ED-GO@PSSHF composite membrane. a Single-gas measurements of small gas molecules and light hydrocarbons permeation through ED-GO@PSSHF membrane (ΔP = 2 bar and room temperature) and b separation performance of ED-GO@PSSHF membrane for binary gas mixtures (The volume ratio of mixture is 1:1, ΔP = 2 bar and room temperature); error bars derived from SD
The ideal selectivity and separation factors of small gas molecules and light hydrocarbons over the ED-GO@PSSHF membrane (ΔP = 2 bar, room temperature)
| Ideal Selectivity (row/col.) | H2 | CO2 | N2 | CH4 | C2H4 | C2H6 | C3H6 |
|---|---|---|---|---|---|---|---|
| (0.29 nm) | (0.33 nm) | (0.37 nm) | (0.38 nm) | (0.39 nm) | (0.39 nm) | (0.43 nm) | |
| CO2 | 4.1 | ||||||
| (0.33 nm)a | |||||||
| N2 | 2.9 | 0.7 | |||||
| (0.37 nm) | |||||||
| CH4 | 2.3 | 0.6 | 0.8 | ||||
| (0.38 nm) | |||||||
| C2H4 | 6.1 | 1.5 | 2.1 | 2.6 | |||
| (0.39 nm) | |||||||
| C2H6 | 10.1 | 2.5 | 3.6 | 4.3 | 1.7 | ||
| (0.39 nm) | |||||||
| C3H6 | 1949.2 (361.5)b | 478.9 | 683.8 | 836.0 (249.7)b | 319.1 (119.6)b | 192.3 (84.6)b | |
| (0.43 nm) | |||||||
| C3H8 | 3366.8 (378.7)b | 827.2 | 1181.1 | 1443.9 (234.7)b | 551.1 (121.8)b | 332.2 (121.2)b | 1.7 |
| (0.43 nm) |
aThe kinetic diameter of the responding molecules
bThe separation factors obtained from the binary gas mixture permeation
Fig. 6Alcohol dehydration performance and comparison with literature. a 50 : 50 wt.% alcohol/water binary mixture separations by pervaporation with ED-GO@PSSHF membrane at 70 °C (error bars derived from SD); b comparison of ED-GO@PSSHF membrane with polymeric and inorganic membranes for the separation of methanol-water mixtures (squares, cycles, and triangles represent polymeric, silica, and zeolite membranes, respectively, open and solid stars indicate the reported GO based membranes and ED-GO@PSSHF membrane, respectively)
Fig. 7Desalination of saline water over ED-GO@PSSHF membrane. The concentration of saline aqueous solutions is 0.1 mol L−1 and the vacuum membrane distillation temperature is 60 °C; error bars derived from SD