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745871

Sigma-Aldrich

Monolayer graphene film

2 in x 2 in on PET film, avg. no. of layers, 1

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About This Item

UNSPSC Code:
12352103
NACRES:
NA.23

form

film

feature

avg. no. of layers 1

resistance

700 Ω/sq

L × W × thickness

2 in. × 2 in. × (theoretical) 0.345 nm, monolayer graphene film
2 in. × 2 in. × 0.188 mm, PET film substrate

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Application

Graphene may be extensively incorporated in several applications, such as; nanoelectronics, fuel cells, solar cells, photovoltaic devices, biosensing, optical biosensors, MEMS, NEMS, field effect transistors (FETs), chemical sensors, nanocarriers in biosensing assays.[1] Another emerging application of monolayer graphene is towards the fabrication of transparent flexible conductive films. [1],4

Other Notes

Specification of a PET film (Representative Value)
Material – PET (Polyethyleneterephtalate) -
Thickness : 0.188 mm (0.0074 inch)
Haze : 0.9%
Light transmission : 92%
Tensile Strength MD:179MPa TD:197MPa
Tensile elongation MD:132% TD:99%
Coefficient of Static Friction : 0.46
Coefficient of Kinetic Friction : 0.40
Coefficient of Thermal expansion MD:0.9% TD:0.7%

Storage Class

11 - Combustible Solids

wgk_germany

WGK 3

flash_point_f

521.6 - 750.2 °F

flash_point_c

272 - 399 °C


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Controlled Synthesis of Monolayer Graphene Toward Transparent Flexible Conductive Film Application
Jee BJ, et al.
Nanoscale Research Letters, 5, 1768-1773 (2010)
Chaejeong Heo et al.
Biomaterials, 32(1), 19-27 (2010-10-01)
Electric field stimulation has become one of the most promising therapies for a variety of neurological diseases. However, the safety and effectiveness of the stimulator are critical in determining the outcome. Because there are few safe and effective in vivo
Lian; Wei-Ren;
Macromolecules, 44(24), 9550-9555 (2011)
Verma; Ved;
Applied Physics Letters, 96(20), 203108/1-203108/3 (2010)
Progress of graphene growth on copper by chemical vapor deposition: Growth behavior and controlled synthesis
LaiPeng MA, et al.
Chinese Science Bulletin, 57(23), 2995- 2999 null

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