Patent
US 10,676,363[BMPY][NTf2]
poloxamer
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 3F. Enlarged view of a portion of the SEM image of a cross-section of the CNF/RGO/MoO xNy aerogel film. [0013]
FIG. 4C shows galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 5C depicts galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 6H shows the cycling stability of a solid-state device over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic charge-discharge …
FIG. 7C depicts galvanostatic charge-discharge curves of the CNF/RGO- and CNF/RGO/MoO xN y -based solid- state supercapacitors at a current density of 1.0 A/g.
FIG. 8A shows cycling stability of a solid- state supercapacitor over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic …
FIG. 10 A is an SEM image of Mo O₃ nanobelts. FIG. lO B is an enlarged view of the SEM image of the nanobelts. [002 1]
FIG. 11 D is an enlarged view of a portion of the SEM image of the cryofractured surfaces of the CNF/GO/Mo O 3 aerogel. [0022]
FIG. 12F is an enlarged view of a portion of the SEM image of the cross-section surface of the CNF/RGO aerogel film.
| — |
Voltage | 1.6–2 V | — |
Voltage | 0–3.6 V | — |
Temperature | 30–800 °C | — |
Thickness | 300–500 nm | — |
Thickness | 50–80 nm | — |
Thickness | 20–1000 nm | — |
Thickness | 50–500 nm | — |
Thickness | 2–100 nm | — |
Thickness | 5–20 nm | — |
Temperature | 100–150 °C | — |
Temperature | ≤ 160 °C | — |
Temperature | ≤ 140 °C | — |
— | ≥ 300 W | — |
— | ≥ 400 W | — |
— | ≥ 50 W | — |
— | ≥ 70 W | — |
GRAPHENE OXIDE-BASED POROUS 3D MESH
[BMPY][NTf2]
poloxamer
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 3F. Enlarged view of a portion of the SEM image of a cross-section of the CNF/RGO/MoO xNy aerogel film. [0013]
FIG. 4C shows galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 5C depicts galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 6H shows the cycling stability of a solid-state device over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic charge-discharge …
FIG. 7C depicts galvanostatic charge-discharge curves of the CNF/RGO- and CNF/RGO/MoO xN y -based solid- state supercapacitors at a current density of 1.0 A/g.
FIG. 8A shows cycling stability of a solid- state supercapacitor over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic …
FIG. 10 A is an SEM image of Mo O₃ nanobelts. FIG. lO B is an enlarged view of the SEM image of the nanobelts. [002 1]
FIG. 11 D is an enlarged view of a portion of the SEM image of the cryofractured surfaces of the CNF/GO/Mo O 3 aerogel. [0022]
FIG. 12F is an enlarged view of a portion of the SEM image of the cross-section surface of the CNF/RGO aerogel film.
| — |
Voltage | 1.6–2 V | — |
Voltage | 0–3.6 V | — |
Temperature | 30–800 °C | — |
Thickness | 300–500 nm | — |
Thickness | 50–80 nm | — |
Thickness | 20–1000 nm | — |
Thickness | 50–500 nm | — |
Thickness | 2–100 nm | — |
Thickness | 5–20 nm | — |
Temperature | 100–150 °C | — |
Temperature | ≤ 160 °C | — |
Temperature | ≤ 140 °C | — |
— | ≥ 300 W | — |
— | ≥ 400 W | — |
— | ≥ 50 W | — |
— | ≥ 70 W | — |
GRAPHENE OXIDE-BASED POROUS 3D MESH
[BMPY][NTf2]
poloxamer
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 3F. Enlarged view of a portion of the SEM image of a cross-section of the CNF/RGO/MoO xNy aerogel film. [0013]
FIG. 4C shows galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 5C depicts galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 6H shows the cycling stability of a solid-state device over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic charge-discharge …
FIG. 7C depicts galvanostatic charge-discharge curves of the CNF/RGO- and CNF/RGO/MoO xN y -based solid- state supercapacitors at a current density of 1.0 A/g.
FIG. 8A shows cycling stability of a solid- state supercapacitor over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic …
FIG. 10 A is an SEM image of Mo O₃ nanobelts. FIG. lO B is an enlarged view of the SEM image of the nanobelts. [002 1]
FIG. 11 D is an enlarged view of a portion of the SEM image of the cryofractured surfaces of the CNF/GO/Mo O 3 aerogel. [0022]
FIG. 12F is an enlarged view of a portion of the SEM image of the cross-section surface of the CNF/RGO aerogel film.
| — |
Voltage | 1.6–2 V | — |
Voltage | 0–3.6 V | — |
Temperature | 30–800 °C | — |
Thickness | 300–500 nm | — |
Thickness | 50–80 nm | — |
Thickness | 20–1000 nm | — |
Thickness | 50–500 nm | — |
Thickness | 2–100 nm | — |
Thickness | 5–20 nm | — |
Temperature | 100–150 °C | — |
Temperature | ≤ 160 °C | — |
Temperature | ≤ 140 °C | — |
— | ≥ 300 W | — |
— | ≥ 400 W | — |
— | ≥ 50 W | — |
— | ≥ 70 W | — |
GRAPHENE OXIDE-BASED POROUS 3D MESH
[BMPY][NTf2]
poloxamer
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 2F. High- resolution C l s XPS spectra of a CNF/GO/Mo O₃ aerogel film after 12 h hydrazine reduction.
FIG. 3F. Enlarged view of a portion of the SEM image of a cross-section of the CNF/RGO/MoO xNy aerogel film. [0013]
FIG. 4C shows galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 5C depicts galvanostatic charge-discharge curves of the CNF/RGO and CNF/RGO/MoO xNy aerogel film electrodes at a current density of 2.0 A/g.
FIG. 6H shows the cycling stability of a solid-state device over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic charge-discharge …
FIG. 7C depicts galvanostatic charge-discharge curves of the CNF/RGO- and CNF/RGO/MoO xN y -based solid- state supercapacitors at a current density of 1.0 A/g.
FIG. 8A shows cycling stability of a solid- state supercapacitor over 2000 cycles at a current density of 1 A/g. The inset shows the galvanostatic …
FIG. 10 A is an SEM image of Mo O₃ nanobelts. FIG. lO B is an enlarged view of the SEM image of the nanobelts. [002 1]
FIG. 11 D is an enlarged view of a portion of the SEM image of the cryofractured surfaces of the CNF/GO/Mo O 3 aerogel. [0022]
FIG. 12F is an enlarged view of a portion of the SEM image of the cross-section surface of the CNF/RGO aerogel film.
| — |
Voltage | 1.6–2 V | — |
Voltage | 0–3.6 V | — |
Temperature | 30–800 °C | — |
Thickness | 300–500 nm | — |
Thickness | 50–80 nm | — |
Thickness | 20–1000 nm | — |
Thickness | 50–500 nm | — |
Thickness | 2–100 nm | — |
Thickness | 5–20 nm | — |
Temperature | 100–150 °C | — |
Temperature | ≤ 160 °C | — |
Temperature | ≤ 140 °C | — |
— | ≥ 300 W | — |
— | ≥ 400 W | — |
— | ≥ 50 W | — |
— | ≥ 70 W | — |