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Precise and Ultrafast Molecular Sieving Through Graphene Oxide Membranes
by
Nair, R. R.
, Wu, H. A.
, Wang, F. C.
, Joshi, R. K.
, Su, Y.
, Carbone, P.
, Kravets, V. G.
, Grigorieva, I. V.
, Geim, A. K.
in
Diffusion
/ filtration
/ graphene
/ graphene oxide
/ High pressure
/ Ions
/ Materials science
/ Permeability
/ Pore size
/ Porous materials
/ sieves
/ sieving
/ Solutes
/ Vacuum filtration
/ Water flow
2014
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Precise and Ultrafast Molecular Sieving Through Graphene Oxide Membranes
by
Nair, R. R.
, Wu, H. A.
, Wang, F. C.
, Joshi, R. K.
, Su, Y.
, Carbone, P.
, Kravets, V. G.
, Grigorieva, I. V.
, Geim, A. K.
in
Diffusion
/ filtration
/ graphene
/ graphene oxide
/ High pressure
/ Ions
/ Materials science
/ Permeability
/ Pore size
/ Porous materials
/ sieves
/ sieving
/ Solutes
/ Vacuum filtration
/ Water flow
2014
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Precise and Ultrafast Molecular Sieving Through Graphene Oxide Membranes
by
Nair, R. R.
, Wu, H. A.
, Wang, F. C.
, Joshi, R. K.
, Su, Y.
, Carbone, P.
, Kravets, V. G.
, Grigorieva, I. V.
, Geim, A. K.
in
Diffusion
/ filtration
/ graphene
/ graphene oxide
/ High pressure
/ Ions
/ Materials science
/ Permeability
/ Pore size
/ Porous materials
/ sieves
/ sieving
/ Solutes
/ Vacuum filtration
/ Water flow
2014
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Precise and Ultrafast Molecular Sieving Through Graphene Oxide Membranes
Journal Article
Precise and Ultrafast Molecular Sieving Through Graphene Oxide Membranes
2014
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Overview
Graphene-based materials can have well-defined nanometer pores and can exhibit low frictional water flow inside them, making their properties of interest for filtration and separation. We investigate permeation through micrometer-thick laminates prepared by means of vacuum filtration of graphene oxide suspensions. The laminates are vacuum-tight in the dry state but, if immersed in water, act as molecular sieves, blocking all solutes with hydrated radii larger than 4.5 angstroms. Smaller ions permeate through the membranes at rates thousands of times faster than what is expected for simple diffusion. We believe that this behavior is caused by a network of nanocapillaries that open up in the hydrated state and accept only species that fit in. The anomalously fast permeation is attributed to a capillary-like high pressure acting on ions inside graphene capillaries.
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