Patent
US 9,745,452polymer resin
polylactide
polymethacrylic acid
poly(caprolactone-lactide) random copolymer
poly(glycolide)
poly(dioxanone)
poly(DL-lactide-co-L-lactide)
poly(DL-lactide-co-glycolide)
poly(glycolide-co-trimethylene carbonate)
poly(L-lactide-co-glycolide)
poly(epsilon-caprolactone)
poly(glycolide-co-L-lactide)
poly(glycolide-co-DL-lactide)
poly-L-lactide
poly-D-lactide
poly-DL-lactide
poly(L-lactide-co-epsilon-caprolactone)
acrylonitrile butadiene styrene
nylon
polyvinyl alcohol
impact-resistant polystyrene
carbon nanotube
fullerene
graphene
FIG. 3 B is a view of a transmission electron 30 micro s cope (TEM) image for observing a filler dispersed in a PLA filament as a fine structure of a graphene …
FIG. 4 is a graph comparing tension strength of a graphene coated Cu nanoparticle/carbon nanotube/PLA filament, a PLA filament, and a carbon nanotube/PLA filament …
durability of the polymer resin. 5 In the exemplary embodiment of the present, the polymer resin may be a biocompatibility polymer, and may specifically include at least one selected from a group including polylactide [PLA], poly(methacrylate) [PMA], a poly(cap
| — |
Thickness | 20–100 nm | — |
Thickness | 30–100 nm | — |
Thickness | 40–100 nm | — |
Thickness | 50–100 nm | — |
Thickness | 60–100 nm | — |
Thickness | 70–100 nm | — |
Thickness | 80–100 nm | — |
Thickness | 90–100 nm | — |
Thickness | 10–90 nm | — |
Thickness | 10–80 nm | — |
Thickness | 10–70 nm | — |
Thickness | 10–50 nm | — |
Thickness | 10–40 nm | — |
Thickness | 10–30 nm | — |
Thickness | 10–20 nm | — |
Temperature | 200–220 °C | — |
3D RUTHENIUM / GRAPHENE AEROGEL COMPOSITE LOADED WITH METAL-ORGANIC FRAMEWORKS, PREPARATION METHOD THEREOF, AND ITS APPLICATION IN CONTINUOUS TREATMENT OF CO
polymer resin
polylactide
polymethacrylic acid
poly(caprolactone-lactide) random copolymer
poly(glycolide)
poly(dioxanone)
poly(DL-lactide-co-L-lactide)
poly(DL-lactide-co-glycolide)
poly(glycolide-co-trimethylene carbonate)
poly(L-lactide-co-glycolide)
poly(epsilon-caprolactone)
poly(glycolide-co-L-lactide)
poly(glycolide-co-DL-lactide)
poly-L-lactide
poly-D-lactide
poly-DL-lactide
poly(L-lactide-co-epsilon-caprolactone)
acrylonitrile butadiene styrene
nylon
polyvinyl alcohol
impact-resistant polystyrene
carbon nanotube
fullerene
graphene
FIG. 3 B is a view of a transmission electron 30 micro s cope (TEM) image for observing a filler dispersed in a PLA filament as a fine structure of a graphene …
FIG. 4 is a graph comparing tension strength of a graphene coated Cu nanoparticle/carbon nanotube/PLA filament, a PLA filament, and a carbon nanotube/PLA filament …
durability of the polymer resin. 5 In the exemplary embodiment of the present, the polymer resin may be a biocompatibility polymer, and may specifically include at least one selected from a group including polylactide [PLA], poly(methacrylate) [PMA], a poly(cap
| — |
Thickness | 20–100 nm | — |
Thickness | 30–100 nm | — |
Thickness | 40–100 nm | — |
Thickness | 50–100 nm | — |
Thickness | 60–100 nm | — |
Thickness | 70–100 nm | — |
Thickness | 80–100 nm | — |
Thickness | 90–100 nm | — |
Thickness | 10–90 nm | — |
Thickness | 10–80 nm | — |
Thickness | 10–70 nm | — |
Thickness | 10–50 nm | — |
Thickness | 10–40 nm | — |
Thickness | 10–30 nm | — |
Thickness | 10–20 nm | — |
Temperature | 200–220 °C | — |
3D RUTHENIUM / GRAPHENE AEROGEL COMPOSITE LOADED WITH METAL-ORGANIC FRAMEWORKS, PREPARATION METHOD THEREOF, AND ITS APPLICATION IN CONTINUOUS TREATMENT OF CO
polymer resin
polylactide
polymethacrylic acid
poly(caprolactone-lactide) random copolymer
poly(glycolide)
poly(dioxanone)
poly(DL-lactide-co-L-lactide)
poly(DL-lactide-co-glycolide)
poly(glycolide-co-trimethylene carbonate)
poly(L-lactide-co-glycolide)
poly(epsilon-caprolactone)
poly(glycolide-co-L-lactide)
poly(glycolide-co-DL-lactide)
poly-L-lactide
poly-D-lactide
poly-DL-lactide
poly(L-lactide-co-epsilon-caprolactone)
acrylonitrile butadiene styrene
nylon
polyvinyl alcohol
impact-resistant polystyrene
carbon nanotube
fullerene
graphene
FIG. 3 B is a view of a transmission electron 30 micro s cope (TEM) image for observing a filler dispersed in a PLA filament as a fine structure of a graphene …
FIG. 4 is a graph comparing tension strength of a graphene coated Cu nanoparticle/carbon nanotube/PLA filament, a PLA filament, and a carbon nanotube/PLA filament …
durability of the polymer resin. 5 In the exemplary embodiment of the present, the polymer resin may be a biocompatibility polymer, and may specifically include at least one selected from a group including polylactide [PLA], poly(methacrylate) [PMA], a poly(cap
| — |
Thickness | 20–100 nm | — |
Thickness | 30–100 nm | — |
Thickness | 40–100 nm | — |
Thickness | 50–100 nm | — |
Thickness | 60–100 nm | — |
Thickness | 70–100 nm | — |
Thickness | 80–100 nm | — |
Thickness | 90–100 nm | — |
Thickness | 10–90 nm | — |
Thickness | 10–80 nm | — |
Thickness | 10–70 nm | — |
Thickness | 10–50 nm | — |
Thickness | 10–40 nm | — |
Thickness | 10–30 nm | — |
Thickness | 10–20 nm | — |
Temperature | 200–220 °C | — |
3D RUTHENIUM / GRAPHENE AEROGEL COMPOSITE LOADED WITH METAL-ORGANIC FRAMEWORKS, PREPARATION METHOD THEREOF, AND ITS APPLICATION IN CONTINUOUS TREATMENT OF CO
polymer resin
polylactide
polymethacrylic acid
poly(caprolactone-lactide) random copolymer
poly(glycolide)
poly(dioxanone)
poly(DL-lactide-co-L-lactide)
poly(DL-lactide-co-glycolide)
poly(glycolide-co-trimethylene carbonate)
poly(L-lactide-co-glycolide)
poly(epsilon-caprolactone)
poly(glycolide-co-L-lactide)
poly(glycolide-co-DL-lactide)
poly-L-lactide
poly-D-lactide
poly-DL-lactide
poly(L-lactide-co-epsilon-caprolactone)
acrylonitrile butadiene styrene
nylon
polyvinyl alcohol
impact-resistant polystyrene
carbon nanotube
fullerene
graphene
FIG. 3 B is a view of a transmission electron 30 micro s cope (TEM) image for observing a filler dispersed in a PLA filament as a fine structure of a graphene …
FIG. 4 is a graph comparing tension strength of a graphene coated Cu nanoparticle/carbon nanotube/PLA filament, a PLA filament, and a carbon nanotube/PLA filament …
durability of the polymer resin. 5 In the exemplary embodiment of the present, the polymer resin may be a biocompatibility polymer, and may specifically include at least one selected from a group including polylactide [PLA], poly(methacrylate) [PMA], a poly(cap
| — |
Thickness | 20–100 nm | — |
Thickness | 30–100 nm | — |
Thickness | 40–100 nm | — |
Thickness | 50–100 nm | — |
Thickness | 60–100 nm | — |
Thickness | 70–100 nm | — |
Thickness | 80–100 nm | — |
Thickness | 90–100 nm | — |
Thickness | 10–90 nm | — |
Thickness | 10–80 nm | — |
Thickness | 10–70 nm | — |
Thickness | 10–50 nm | — |
Thickness | 10–40 nm | — |
Thickness | 10–30 nm | — |
Thickness | 10–20 nm | — |
Temperature | 200–220 °C | — |
3D RUTHENIUM / GRAPHENE AEROGEL COMPOSITE LOADED WITH METAL-ORGANIC FRAMEWORKS, PREPARATION METHOD THEREOF, AND ITS APPLICATION IN CONTINUOUS TREATMENT OF CO