Patent
US 9,964,825Patent
Atlas literature
Patent
US 9,964,825Patent drawings and their descriptions. Click a drawing to enlarge it.
Figure 1 is a schematic diagram showing a graphene backlight module according to an embodiment of the present disclosure; and
Figure 2 is a schematic diagram showing a liquid crystal display device including the graphene backlight module of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, a second insulating protection layer, a metallic reflection layer, and a first black matrix, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; the second insulating protection layer covers the graphene gates and the first insulating protection layer; the metallic reflection layer is disposed along a side of the lower substrate away from the graphene light generation layer; and the first black matrix is disposed on the second insulating protection layer and among the graphene light generation blocks.
The graphene backlight module as claimed in Claim 1, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 1, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 1, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second insulating protection layer, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The graphene backlight module as claimed in Claim 5, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The graphene backlight module as claimed in Claim 5, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks. ~ 12 -
The graphene backlight module as claimed in Claim 5, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 5, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 5, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A liquid crystal display device comprising a graphene backlight module, q liquid crystal member, an upper substrate, a lower polarization film, and an upper polarization film, wherein the liquid crystal member is disposed between the graphene backlight module and the upper substrate; the lower polarization film is disposed between a light emission side of the graphene backlight module and the liquid crystal member; the upper polarization film is disposed on a side of the upper substrate away from the liquid crystal member; the graphene backlight module comprises a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second-13-insulating protection layer; the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The liquid crystal display device as claimed in Claim 12, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The liquid crystal display device as claimed in Claim 12, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks.
The liquid crystal display device as claimed in Claim 12, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The liquid crystal display device as claimed in Claim 12, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The liquid crystal display device as claimed in Claim 12, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green-14-l ight of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 4 0-50V.
The liquid crystal display device as claimed in Claim 12, further comprising a plurality of partition columns sandwiched between the lower polarization film and the upper substrate and separating the liquid crystal member into a plurality of regions, wherein each region corresponds to a graphene light generation block in the graphene backlight module.
Layer stacks claimed or described, ordered top of device to substrate.
graphene backlight module
Materials described outside the worked examples.
graphene light generation layer (semi-reduced graphene oxide)
graphene sources
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
red light emission voltage range (gate-source) | 3.3–10 V | semi-reduced graphene oxide |
green light emission voltage range (gate-source) | 20–30 V |
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Atlas literature
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US 9,964,825Patent drawings and their descriptions. Click a drawing to enlarge it.
Figure 1 is a schematic diagram showing a graphene backlight module according to an embodiment of the present disclosure; and
Figure 2 is a schematic diagram showing a liquid crystal display device including the graphene backlight module of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, a second insulating protection layer, a metallic reflection layer, and a first black matrix, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; the second insulating protection layer covers the graphene gates and the first insulating protection layer; the metallic reflection layer is disposed along a side of the lower substrate away from the graphene light generation layer; and the first black matrix is disposed on the second insulating protection layer and among the graphene light generation blocks.
The graphene backlight module as claimed in Claim 1, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 1, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 1, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second insulating protection layer, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The graphene backlight module as claimed in Claim 5, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The graphene backlight module as claimed in Claim 5, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks. ~ 12 -
The graphene backlight module as claimed in Claim 5, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 5, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 5, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A liquid crystal display device comprising a graphene backlight module, q liquid crystal member, an upper substrate, a lower polarization film, and an upper polarization film, wherein the liquid crystal member is disposed between the graphene backlight module and the upper substrate; the lower polarization film is disposed between a light emission side of the graphene backlight module and the liquid crystal member; the upper polarization film is disposed on a side of the upper substrate away from the liquid crystal member; the graphene backlight module comprises a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second-13-insulating protection layer; the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The liquid crystal display device as claimed in Claim 12, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The liquid crystal display device as claimed in Claim 12, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks.
The liquid crystal display device as claimed in Claim 12, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The liquid crystal display device as claimed in Claim 12, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The liquid crystal display device as claimed in Claim 12, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green-14-l ight of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 4 0-50V.
The liquid crystal display device as claimed in Claim 12, further comprising a plurality of partition columns sandwiched between the lower polarization film and the upper substrate and separating the liquid crystal member into a plurality of regions, wherein each region corresponds to a graphene light generation block in the graphene backlight module.
Layer stacks claimed or described, ordered top of device to substrate.
graphene backlight module
Materials described outside the worked examples.
graphene light generation layer (semi-reduced graphene oxide)
graphene sources
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
red light emission voltage range (gate-source) | 3.3–10 V | semi-reduced graphene oxide |
green light emission voltage range (gate-source) | 20–30 V |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
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US 9,964,825Patent drawings and their descriptions. Click a drawing to enlarge it.
Figure 1 is a schematic diagram showing a graphene backlight module according to an embodiment of the present disclosure; and
Figure 2 is a schematic diagram showing a liquid crystal display device including the graphene backlight module of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, a second insulating protection layer, a metallic reflection layer, and a first black matrix, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; the second insulating protection layer covers the graphene gates and the first insulating protection layer; the metallic reflection layer is disposed along a side of the lower substrate away from the graphene light generation layer; and the first black matrix is disposed on the second insulating protection layer and among the graphene light generation blocks.
The graphene backlight module as claimed in Claim 1, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 1, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 1, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second insulating protection layer, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The graphene backlight module as claimed in Claim 5, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The graphene backlight module as claimed in Claim 5, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks. ~ 12 -
The graphene backlight module as claimed in Claim 5, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 5, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 5, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A liquid crystal display device comprising a graphene backlight module, q liquid crystal member, an upper substrate, a lower polarization film, and an upper polarization film, wherein the liquid crystal member is disposed between the graphene backlight module and the upper substrate; the lower polarization film is disposed between a light emission side of the graphene backlight module and the liquid crystal member; the upper polarization film is disposed on a side of the upper substrate away from the liquid crystal member; the graphene backlight module comprises a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second-13-insulating protection layer; the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The liquid crystal display device as claimed in Claim 12, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The liquid crystal display device as claimed in Claim 12, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks.
The liquid crystal display device as claimed in Claim 12, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The liquid crystal display device as claimed in Claim 12, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The liquid crystal display device as claimed in Claim 12, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green-14-l ight of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 4 0-50V.
The liquid crystal display device as claimed in Claim 12, further comprising a plurality of partition columns sandwiched between the lower polarization film and the upper substrate and separating the liquid crystal member into a plurality of regions, wherein each region corresponds to a graphene light generation block in the graphene backlight module.
Layer stacks claimed or described, ordered top of device to substrate.
graphene backlight module
Materials described outside the worked examples.
graphene light generation layer (semi-reduced graphene oxide)
graphene sources
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
red light emission voltage range (gate-source) | 3.3–10 V | semi-reduced graphene oxide |
green light emission voltage range (gate-source) | 20–30 V |
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Patent
Atlas literature
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US 9,964,825Patent drawings and their descriptions. Click a drawing to enlarge it.
Figure 1 is a schematic diagram showing a graphene backlight module according to an embodiment of the present disclosure; and
Figure 2 is a schematic diagram showing a liquid crystal display device including the graphene backlight module of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, a second insulating protection layer, a metallic reflection layer, and a first black matrix, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; the second insulating protection layer covers the graphene gates and the first insulating protection layer; the metallic reflection layer is disposed along a side of the lower substrate away from the graphene light generation layer; and the first black matrix is disposed on the second insulating protection layer and among the graphene light generation blocks.
The graphene backlight module as claimed in Claim 1, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 1, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 1, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A graphene backlight module, comprising a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second insulating protection layer, wherein the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The graphene backlight module as claimed in Claim 5, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The graphene backlight module as claimed in Claim 5, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks. ~ 12 -
The graphene backlight module as claimed in Claim 5, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The graphene backlight module as claimed in Claim 5, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The graphene backlight module as claimed in Claim 5, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green light of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 40-50V.
A liquid crystal display device comprising a graphene backlight module, q liquid crystal member, an upper substrate, a lower polarization film, and an upper polarization film, wherein the liquid crystal member is disposed between the graphene backlight module and the upper substrate; the lower polarization film is disposed between a light emission side of the graphene backlight module and the liquid crystal member; the upper polarization film is disposed on a side of the upper substrate away from the liquid crystal member; the graphene backlight module comprises a lower substrate, a plurality of graphene sources, a plurality of graphene drains, a graphene light generation layer, a first insulating protection layer, a plurality of graphene gates, and a second-13-insulating protection layer; the graphene sources and drains are disposed alternately at intervals on the lower substrate; the graphene light generation layer is disposed on the lower substrate, the graphene sources and drains, where the graphene light generation layer comprises a plurality of graphene light generation blocks disposed at intervals, and each graphene light generation block covers a pair of graphene source and drain; the first insulating protection layer covers the lower substrate and the graphene light generation layer; the graphene gates are disposed at intervals on the first insulating protection layer, each corresponding to a graphene light generation block; and the second insulating protection layer covers the graphene gates and the first insulating protection layer.
The liquid crystal display device as claimed in Claim 12, further comprising a metallic reflection layer disposed along a side of the lower substrate away from the graphene light generation layer.
The liquid crystal display device as claimed in Claim 12, further comprising a first black matrix disposed on the second insulating protection layer and among the graphene light generation blocks.
The liquid crystal display device as claimed in Claim 12, wherein the graphene gates are made of a graphene oxide; the graphene sources and drains are made of a reduced graphene oxide; and the graphene light generation layer is made of a semi-reduced graphene oxide.
The liquid crystal display device as claimed in Claim 12, wherein the lower substrate is made of Polyethylene terephthalate (PET), glass, or nickel.
The liquid crystal display device as claimed in Claim 12, wherein the graphene light generation blocks produce red light if the voltage difference between the graphene gates and sources is 3.3 -10 V; the graphene light generation blocks produce green-14-l ight of the voltage difference between the graphene gates and sources is 20-30V; and the graphene light generation blocks produce blue light if the voltage difference between the graphene gates and sources is 4 0-50V.
The liquid crystal display device as claimed in Claim 12, further comprising a plurality of partition columns sandwiched between the lower polarization film and the upper substrate and separating the liquid crystal member into a plurality of regions, wherein each region corresponds to a graphene light generation block in the graphene backlight module.
Layer stacks claimed or described, ordered top of device to substrate.
graphene backlight module
Materials described outside the worked examples.
graphene light generation layer (semi-reduced graphene oxide)
graphene sources
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
red light emission voltage range (gate-source) | 3.3–10 V | semi-reduced graphene oxide |
green light emission voltage range (gate-source) | 20–30 V |
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