Graphene Materials with Controlled Morphology
US-2016130148-A1 · May 12, 2016 · US
US10864460B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10864460-B2 |
| Application number | US-201515515960-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 30, 2015 |
| Priority date | Sep 30, 2014 |
| Publication date | Dec 15, 2020 |
| Grant date | Dec 15, 2020 |
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A variety of inorganic-organic hybrid materials and various methods for preparing and using the same are described. The hybrid materials are graphene or graphitic materials populated with organic molecules and may have a variety of surface defects, pits or three-dimensional architecture, thereby increasing the surface area of the material. The hybrid materials may take the form of three dimensional graphene nanosheets (3D GNS). If the organic molecules are enantiospecific molecules, the hybrid materials can be used for chiral separation of racemic mixtures.
Opening claim text (preview).
What is claimed is: 1. An inorganic-organic hybrid material comprising a non-contiguous, three-dimensional graphene material comprising at least two layers of carbon atoms and comprising a plurality of voids wherein the graphene material is populated with organic molecules. 2. The inorganic-organic hybrid material of claim 1 wherein the organic molecule is an enantioselective molecule. 3. The inorganic-organic hybrid material of claim 2 wherein the enantioselective molecule is (S)-(+)-2-pyrrolidinemethanol. 4. The inorganic-organic hybrid material of claim 1 , wherein the three-dimensional graphene structure is a plurality of graphene flowers wherein each graphene flower comprises a plurality of voids. 5. The inorganic-organic hybrid material of claim 4 wherein the three-dimensional structure is formed by: dispersing a graphene precursor on a sacrificial support to produce a hybrid material; atomizing the hybrid material; flowing the atomized hybrid material through a pre-heated furnace to produce supported graphene materials; collecting the supported graphene materials; heat treating the collected supporting materials; and removing the sacrificial support to produce voids. 6. The inorganic-organic hybrid material of claim 1 wherein the three-dimensional graphene material, comprises graphene walls and voids. 7. The inorganic-organic hybrid material of claim 6 wherein the voids are formed by the removal of a sacrificial support material. 8. The inorganic-organic hybrid material of claim 1 comprising a plurality of voids that have been formed by the removal of a sacrificial support material. 9. The inorganic-organic hybrid material of claim 1 wherein the three-dimensional shape is a sphere or near-sphere. 10. The inorganic-organic hybrid material of claim 9 wherein the sphere or near-sphere is formed by spray-pyrolysis. 11. The inorganic-organic hybrid material of claim 1 wherein the predetermined structure comprises pores of a predetermined shape or size. 12. The inorganic-organic hybrid material of claim 1 , wherein the graphene comprises between 3 and 20 layers of carbon atoms.
Phases chemically bonded to a substrate, e.g. to silica or to polymers · CPC title
Carbon nanostructures, e.g. nanotubes, nanohorns, nanocones, nanoballs (carbon nanotubes per se C01B32/15) · CPC title
Graphene · CPC title
Purification · CPC title
Detectors specially adapted therefor · CPC title
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