| Literature DB >> 24957494 |
Tariq Altalhi1, Milena Ginic-Markovic2, Ninghui Han3, Stephen Clarke4, Dusan Losic5.
Abstract
Carbon nanotubes are attractive approach for designing of new membranes for advanced molecular separation because of their unique transport properties and ability to mimic biological protein channels. In this work the synthetic approach for fabrication ofEntities:
Year: 2010 PMID: 24957494 PMCID: PMC4056580 DOI: 10.3390/membranes1010037
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Figure 1Schematic of fabrication CNT/PA membrane composites by CVD growth of carbon nanotubes inside of porous alumina oxide pores.
Figure 2SEM images of PA membranes prepared by electrochemical anodisation of Al foil showing. (a) Cross-section of whole membrane structure; (b-c) top surface of pores; (d) high-resolution cross-sectional image of PA membranes showing straight channel of pore structures; (e) bottom surface with closed pores before pore opening; and (f) the bottom pore surface after pore opening.
Figure 3SEM images of carbon nanotube (CNT) synthetised inside of pores of PA membrane. (a) cross-sectional image of prepared CNT/PA composite membrane showing CNT inside of pores; (b) a cross-sectional image from the bottom in case when PA bottom was closed. Inset shows scheme of closed pores; (c) CNT structure inside of pores obtained from fractured membranes. Inset show CNT after partial removal of oxide; (d-e) high resolution images of CNT inside of pore showing that CNTs have identical shape as pore structures.
Figure 4(a-b) Overgrowth of CNT on the top of PA membranes caused by catalytic reaction on the PA surface; (c) overgrowth of CNT caused by ferrocene catalytic reaction from the pores; (d) TEM image of CNT prepared after liberation of nanotubes from template showing two different types of CNT (1) iron catalyst induced growth on surface and (2) CNT grown inside of pore; (e) high resolution TEM image of catalyst growth CNT; and (f) pore growth CNT.
Figure 5CNT/PA membranes prepared by catalyst free carbon precursor (toluene/ethanol). (a) cross-sectional SEM image of whole membrane; (b) Image from the top surface showing that the growth of the CNT is terminated on the top without of overgrowth; and (c) TEM image of liberated CNT grown inside of pores.
Figure 6EDX analysis of CNT synthesised in PA with catalyst (ferrocene/toluene) carbon precursor taken from (a) the top of the PA surface and (b) the inside of PA pores and (c) XRD spectrum CNT inside of PA that indicates a small carbon peak (arrow). Inset shows XRD spectrum of CNT liberated from PA template that shows very strong carbon peak (ferrocene/toluene).
Figure 7a) Experimental set-up for measurement of transport properties of prepared CNT/PA membranes; b) flux of model molecules (Rose Bengal) through membrane determined before (PA) and after CNT synthesis (CNT/PA); and c) formula of Rose Bengal.