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Merck
CN

735167

Fluorine doped tin oxide coated glass slide

greener alternative

L × W × thickness 300 mm × 300 mm × 2.2 mm, surface resistivity ~7 Ω/sq

Synonym(s):

FTO glass

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About This Item

UNSPSC Code:
12352103
EC Number:
242-159-0
NACRES:
NA.23
Material:
coating (Fluorine doped tin oxide)
Packaging:
1 ea of
Manufacturer/tradename:
Sigma-Aldrich
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Quality Level

material

coating (Fluorine doped tin oxide)

description

Haze: 5%, Substrates and Prefab Devices

composition

SnO2/F

manufacturer/tradename

Sigma-Aldrich

packaging

1 ea of

greener alternative product characteristics

Design for Energy Efficiency
Learn more about the Principles of Green Chemistry.

sustainability

Greener Alternative Product

surface resistivity

~7 Ω/sq

L × W × thickness

300 mm × 300 mm × 2.2 mm

transmittance

80-82% (visible)

greener alternative category

General description

The coating thickness of Fluorine doped tin oxide on glass slide is ∼ 550 nm. The glass has a refractive index of ∼ 1.52 and the SnO2:F coating is ∼ 1.85.
We are committed to bringing you Greener Alternative Products that adhere to one of the four categories of Greener Alternatives. This is an enabling product that enhances the performance of perovskite fuel cells, facilitating high solar energy conversion and contributing to more efficient energy solutions. Click here for more information.

Application

Fluorine doped tin oxide coated glass slide (FTO glass) can be used as a substrate for the fabrication of dye sensitized solar cells (DSSCs) and photovoltaic cells (PVs).


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Storage Class

13 - Non Combustible Solids

wgk

WGK 2

flash_point_f

Not applicable

flash_point_c

Not applicable



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Facile solution-controlled growth of CuInS2 thin films on FTO and TiO2/FTO glass substrates for photovoltaic application
Peng S, et al.
Journal of alloys and compounds, 481(1-2), 786-791 (2009)
Hydrothermal fabrication of hierarchically anatase TiO 2 nanowire arrays on FTO glass for dye-sensitized solar cells
Wu W, et al.
Scientific reports, 3, 1352-1352 (2013)
Malkeshkumar Patel et al.
Beilstein journal of nanotechnology, 9, 2432-2442 (2018-09-27)
Co3O4 has been widely studied as a catalyst when coupled with a photoactive material during hydrogen production using water splitting. Here, we demonstrate a photoactive spinel Co3O4 electrode grown by the Kirkendall diffusion thermal oxidation of Co nanoparticles. The thickness-dependent



Global Trade Item Number

SKUGTIN
735167-1EA04061835571864