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Key Documents

929670

Sigma-Aldrich

ElectroGreen®

greener alternative

Acetone substitute for electronics, bio-sourced

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About This Item

UNSPSC Code:
12190000
NACRES:
NA.02

grade

for electronic purposes

Quality Level

description

Relative Evaporation rate: 2.84

Hansen Solubility Parameters: SPd = 7.7; SPp = 3.4; SPh = 6.1.

assay

≥99% (GC)

form

liquid

greener alternative product characteristics

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

impurities

≤0.09 wt. % Acidity (as lactic acid)
≤0.2% Water (Karl Fischer)
≤1 ppm As, Cr, Cd, Cu, Hg, Mn, Ni, Pb, Zn, trace (each)

evapn. residue

≤0.05%

color

clear

viscosity

7.8 cP(20 °C)

density

0.8620 at 25 °C (specific gravity)

greener alternative category

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General description

This ElectroGreen® solvent is made of bio-based(corn/beets-derived) safer alternatives to replace synthetic acetone fossil-based solvent with specifications tailored for electronics and energy applications. All our ElectroGreen® solvents line are derived from a renewable resource (verified through C14 ASTM D6866-16 testing). We are committed to bringing you Greener Alternative Products, which adhere to one or more of The 12 Principles of Greener Chemistry. Click here for more details.

This solvent blend consists of ethyl acetate 50-70%, ethanol 30-50%, Ethyl lactate 10-20%.

Application

Our bio-sourced acetone substitute is our greener electronic solvent for cleaning electronics or to be used as a thinner on ink formulations.

Storage and Stability

To ensure low water content, handle under inert conditions. Product should be refrigerated upon receipt.

Legal Information

ElectroGreen is a registered trademark of Merck KGaA, Darmstadt, Germany

signalword

Danger

Hazard Classifications

Eye Dam. 1 - Flam. Liq. 2 - STOT SE 3

target_organs

Central nervous system

supp_hazards

Storage Class

3 - Flammable liquids

wgk_germany

WGK 1

flash_point_f

39.2 °F

flash_point_c

4 °C


Certificados de análisis (COA)

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Artículos

Carbon-based Sustainable Organic Electronics (SOE) limit the use of critical elements and biodegrade at their end-of-life. This review offers insight on how structural and energy disorder in these materials influence device performance and includes evaluations of various transport models and their limitations.

Carbon-based Sustainable Organic Electronics (SOE) limit the use of critical elements and biodegrade at their end-of-life. This review offers insight on how structural and energy disorder in these materials influence device performance and includes evaluations of various transport models and their limitations.

Carbon-based Sustainable Organic Electronics (SOE) limit the use of critical elements and biodegrade at their end-of-life. This review offers insight on how structural and energy disorder in these materials influence device performance and includes evaluations of various transport models and their limitations.

Carbon-based Sustainable Organic Electronics (SOE) limit the use of critical elements and biodegrade at their end-of-life. This review offers insight on how structural and energy disorder in these materials influence device performance and includes evaluations of various transport models and their limitations.

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