Patent
US 11,246,962polyethylene glycol (PEG)
ethylene oxide
C₂H₄O
propylene oxide
C₃H₆O
vinyl acetate
vinyl monomers
water soluble electrophiles
polypropylene glycol
polyethylene imine (PEI)
poly(vinyl alcohol) (PVA)
poly(acrylic acid)
polyvinyl pyrrolidone (PVP)
dextrose
C₆H₁₂O₆
starch
pectin
agarose
2-aminoethanesulfonic acid (taurine)
C₂H₇NO₃S
PEG₆₀₀
poly(hydroxyalkyl acrylates)
poly(hydroxalkyl methacrylates)
3D graphene scaffold
PEG-PEI block copolymers
polysaccharides
FIGS. 2C-2D are TEM images of PEG- GNRs. [0
FIG. 9 shows the mobility recovery of one of the tested rats following in t ra-topical application of 1% PEG-GNR in PEG₆ 00 to blunt ends of transected spinal …
functionalized graphene nanoribbons |
electrical conductivity (lower bound, claim 16) | ≥ 10 S/cm | functionalized graphene nanoribbons |
Thickness | 100–200 nm | — |
polyethylene glycol (PEG)
ethylene oxide
C₂H₄O
propylene oxide
C₃H₆O
vinyl acetate
vinyl monomers
water soluble electrophiles
polypropylene glycol
polyethylene imine (PEI)
poly(vinyl alcohol) (PVA)
poly(acrylic acid)
polyvinyl pyrrolidone (PVP)
dextrose
C₆H₁₂O₆
starch
pectin
agarose
2-aminoethanesulfonic acid (taurine)
C₂H₇NO₃S
PEG₆₀₀
poly(hydroxyalkyl acrylates)
poly(hydroxalkyl methacrylates)
3D graphene scaffold
PEG-PEI block copolymers
polysaccharides
FIGS. 2C-2D are TEM images of PEG- GNRs. [0
FIG. 9 shows the mobility recovery of one of the tested rats following in t ra-topical application of 1% PEG-GNR in PEG₆ 00 to blunt ends of transected spinal …
functionalized graphene nanoribbons |
electrical conductivity (lower bound, claim 16) | ≥ 10 S/cm | functionalized graphene nanoribbons |
Thickness | 100–200 nm | — |
polyethylene glycol (PEG)
ethylene oxide
C₂H₄O
propylene oxide
C₃H₆O
vinyl acetate
vinyl monomers
water soluble electrophiles
polypropylene glycol
polyethylene imine (PEI)
poly(vinyl alcohol) (PVA)
poly(acrylic acid)
polyvinyl pyrrolidone (PVP)
dextrose
C₆H₁₂O₆
starch
pectin
agarose
2-aminoethanesulfonic acid (taurine)
C₂H₇NO₃S
PEG₆₀₀
poly(hydroxyalkyl acrylates)
poly(hydroxalkyl methacrylates)
3D graphene scaffold
PEG-PEI block copolymers
polysaccharides
FIGS. 2C-2D are TEM images of PEG- GNRs. [0
FIG. 9 shows the mobility recovery of one of the tested rats following in t ra-topical application of 1% PEG-GNR in PEG₆ 00 to blunt ends of transected spinal …
functionalized graphene nanoribbons |
electrical conductivity (lower bound, claim 16) | ≥ 10 S/cm | functionalized graphene nanoribbons |
Thickness | 100–200 nm | — |
polyethylene glycol (PEG)
ethylene oxide
C₂H₄O
propylene oxide
C₃H₆O
vinyl acetate
vinyl monomers
water soluble electrophiles
polypropylene glycol
polyethylene imine (PEI)
poly(vinyl alcohol) (PVA)
poly(acrylic acid)
polyvinyl pyrrolidone (PVP)
dextrose
C₆H₁₂O₆
starch
pectin
agarose
2-aminoethanesulfonic acid (taurine)
C₂H₇NO₃S
PEG₆₀₀
poly(hydroxyalkyl acrylates)
poly(hydroxalkyl methacrylates)
3D graphene scaffold
PEG-PEI block copolymers
polysaccharides
FIGS. 2C-2D are TEM images of PEG- GNRs. [0
FIG. 9 shows the mobility recovery of one of the tested rats following in t ra-topical application of 1% PEG-GNR in PEG₆ 00 to blunt ends of transected spinal …
functionalized graphene nanoribbons |
electrical conductivity (lower bound, claim 16) | ≥ 10 S/cm | functionalized graphene nanoribbons |
Thickness | 100–200 nm | — |