Graphene monoxide compositions of matter and electrodes comprising them
A composition of graphene-based nanomaterials characterized by at least one area of one atomic layer of graphene monoxide, wherein at least a portion of oxygen molecules present in the graphene monoxide are incorporated into specific crystalline structural moieties, methods of making the same, electrodes in electrochemical devices incorporating the same, and compositions of lithium and graphene monoxide containing materials that result from cycling said electrodes.
1 . A composite material comprising:
multiple orientational domains of graphitic sheets; and
domains of graphene monoxide, wherein at least a portion of oxygen molecules present in the graphene monoxide are incorporated into structures having chemical moieties selected from the group consisting of 1,3 dioxetane rings, 1,5-dioxa-cyclooctane rings, 1,4,7-trioxa-cyclononane rings, (3,5,8,10)-tetraoxa-(1,6)-cyclodecadiene rings, and polycarbonyl chains.
2 . The composite material of claim 1 , wherein the chemical moieties comprise atomically ordered chemical moieties in one or more crystalline phases of two-dimensional graphene monoxide crystal structures having a carbon-to-oxygen atomic ratio of about 1:1.
3 . The composite material of claim 2 , wherein interatomic lattice spacings for the crystal structures display electron diffraction or x-ray diffraction signatures at 0.38-0.40 Å −1 and 0.63-0.68 Å −1 .
4 . The composite material of claim 3 , further comprising at least one transition metal oxide.
5 . The composite material of claim 4 , wherein the transition metal oxide comprises a transition metal selected from the group consisting of Ti, V, Cr, Zr, Nb, Mo, Fe, Co, Ni, Hf, Ta, and W.
6 . The composite material of claim 4 , wherein interatomic lattice spacings for the crystal structures display electron diffraction or x-ray diffraction signatures at 0.38-0.40 Å −1 and 0.63-0.68 Å −1 .
7 . The composite material of claim 6 , wherein interatomic lattice spacings for structures within the composite material display carbon-oxygen vibrational peaks between about 1,000 cm −1 and 1,500 cm −1 and between about 1,550 cm −1 and 1,650 cm −1 in infrared spectroscopy.
8 . The composite material of claim 3 , having a Brunauer-Emmett-Teller (BET) surface area between 1-50 m 2 /g.
9 . The composite material of claim 4 , wherein: the graphene monoxide is crystalline or amorphous and the transition metal oxide is amorphous and distributed substantially homogeneously throughout the composite material, or is present in the composite material as nanocrystals that are detectable by electron diffraction or x-ray diffraction.
10 . The composite material of claim 1 , further comprising lithium ions or lithium atoms intercalated or adsorbed onto the graphene monoxide.
11 . The composite material of claim 10 , wherein the lithium ions or lithium atoms are present in a ratio from Li 2 C 2 O 2 to LiC 50 O 50 with respect to carbon and oxygen atoms of the chemical moieties in the graphene monoxide.
12 . An electrode comprising a composite material comprising:
multiple orientational domains of graphitic sheets; and
domains of graphene monoxide, wherein at least a portion of oxygen molecules present in the graphene monoxide are incorporated into structures having chemical moieties selected from the group consisting of 1,3 dioxetane rings, 1,5-dioxa-cyclooctane rings, 1,4,7-trioxa-cyclononane rings, (3,5,8,10)-tetraoxa-(1,6)-cyclodecadiene rings, and polycarbonyl chains.
13 . The electrode of claim 12 , wherein the composite material further comprises at least one transition metal oxide.
14 . The electrode of claim 12 , wherein the composite material further comprises graphite, silicon, a binder, or a combination thereof.
15 . A charge-storage device comprising an electrode comprising:
multiple orientational domains of graphitic sheets; and
domains of graphene monoxide, wherein at least a portion of oxygen molecules present in the graphene monoxide are incorporated into structures having chemical moieties selected from the group consisting of 1,3 dioxetane rings, 1,5-dioxa-cyclooctane rings, 1,4,7-trioxa-cyclononane rings, (3,5,8,10)-tetraoxa-(1,6)-cyclodecadiene rings, and polycarbonyl chains.
16 . The charge-storage device of claim 15 , wherein the electrode further comprises at least one transition metal oxide.
17 . The charge-storage device of claim 16 , wherein the charge-storage device exhibits a monotonically decreasing potential versus specific capacity curve.
18 . The charge-storage device of claim 15 , wherein the charge-storage device is a lithium-ion battery or a sodium-ion battery.