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ChemicalBook--->CAS DataBase List--->14808-79-8

14808-79-8

14808-79-8 Structure

14808-79-8 Structure
IdentificationMore
[Name]

SULFATE STANDARD
[CAS]

14808-79-8
[Synonyms]

AQUANAL-PLUS SULFATE
AQUANAL(R)-PLUS SULFATE
AQUANAL(R)-PLUS SULFATE (SO4) CHECK SOLUTION
SODIUM SULFATE
SULFATE, ANALYTICAL STANDARD
SULFATE, CERTIFIED ANION STANDARD
SULFATE CONCENTRATE ION STANDARD
SULFATE IC STANDARD
SULFATE ION
SULFATE ION CHROMATOGRAPHY STANDARD
SULFATE, ION CHROMATOGRAPHY STANDARD SOLUTION
SULFATE ION STANDARD
SULFATE STANDARD
SULFATE STANDARD SOLUTION
SULPHATE
sulphate-sulfate
Sulfate, Ion chromatography standard solution, Specpure(R), SO4-2 1000μg/ml
AQUANAL(R)-plus sulfate (SO4) 50-330 mg/L
[EINECS(EC#)]

604-622-9
[Molecular Formula]

O4S-2
[MDL Number]

MFCD00145343
[Molecular Weight]

96.06
[MOL File]

14808-79-8.mol
Chemical PropertiesBack Directory
[storage temp. ]

2-8°C
[form ]

Liquid
[color ]

Clear colorless
[BRN ]

3648446
[CAS DataBase Reference]

14808-79-8(CAS DataBase Reference)
[EPA Substance Registry System]

Sulfate (14808-79-8)
Safety DataBack Directory
[Hazard Codes ]

Xn
[Risk Statements ]

R20/22:Harmful by inhalation and if swallowed .
[RIDADR ]

UN 3316 9
Raw materials And Preparation ProductsBack Directory
[Preparation Products]

Silk softener L-->3,7-Dimethyl-7-hydroxyoctanal-->ribonucleic acid for injection-->Reactive Red Brown K-B3r-->Reactive Blue 104-->REACTIVE BLUE 19-->Reactive Blue BRF-->monoethanolamine dodecyl sulfate-->sec-alkyl sodium sulfate-->REACTIVE VIOLET 5-->Lanoconazole-->Reactive Blue 222-->Reactive Dark Blue M-2ge-->Reactive Golden Yellow KM-G-->trisodium [5-acetamido-4-hydroxy-3-[[2-hydroxy-5-[[2-(sulphooxy)ethyl]sulphonyl]phenyl]azo]naphthalene-2,7-disulphonato(5-)]cuprate(3-)-->Reactive Light Yellow M-5G-->REACTIVE BLACK 5-->Reactive Turquoise Blue Kn-G-->Reactive Yeiiow M-3RE-->Reactive Yellow 176-->Reactive Red ME-2G-->Silk softener-->Reactive Brilliant Yellow M-7G-->finishing agent for mylon industrial silk-->Reactive Black 31-->Reactive Blue 231-->Reactive Red M-3BE-->Reactive Brilliant Blue M-BR-->[2-[[4-[(2-cyano-4-nitrophenyl)azo]phenyl]ethylamino]ethyl]trimethylammonium methyl sulphate-->Reactive Disperse Scarlet G-->Reactive Red 180-->C.I.Reactive Red 11-->2-[(4-amino-9,10-dihydro-9,10-dioxo-3-sulfo-1-anthracenyl) amino]-4-[[2-(sulfooxy)ethyl]sulfonyl]-Benzoic acid-->frothing agent K14-->REACTIVE RED 194-->REACTIVE RED 198-->Reactive Red 240-->Reactive Black M-2R-->disodium 6-acetamido-4-hydroxy-3-[[4-[[2-(sulphonatooxy)ethyl]sulphonyl]phenyl]azo]naphthalene-2-sulphonate-->Reactive Disperse Orange R
Hazard InformationBack Directory
[Description]

The sulfate anion (SO42−) is the stable, oxidized form of sulfur. Sulfate minerals are widely distributed in nature, and most sulfate compounds are readily soluble in water. All sulfate salts are very soluble except for calcium and silver sulfates, which are moderately soluble, and barium, mercury, lead, and strontium sulfates, which are insoluble.
It is estimated that about one-half of the river sulfate load arises from mineral weathering and volcanism, and the other half from biochemical and anthropogenic sources. Industrial discharges are another significant source of sulfates. Mine and tailings drainage, smelter emissions, agricultural runoff from fertilized lands, pulp and paper mills, textile mills, tanneries, sulfuric acid production, and metalworking industries are all sources of sulfate-polluted water. Aluminum sulfate (alum) is used as a sedimentation agent for treating drinking water. Copper sulfate is used for controlling algae in raw and public water supplies.
[Definition]

ChEBI: A sulfur oxoanion obtained by deprotonation of both OH groups of sulfuric acid.
[Health Hazard]

The sulfate anion is generally considered nontoxic to animal, aquatic, and plant life. It is an important source of sulfur, an essential nutrient for plants and animals. Sulfates are used as additives in the food industry, and the average daily intake of sulfate from drinking water, air, and food is approximately 500 mg. As examples, some measured sulfate concentrations in beverages are 100–500 mg/L in drinking water, 500 mg/L in coconut milk, 260 mg/L in beer (bitter), 250 mg/L in tomato juice, and 300 mg/L in red wine (FNB 2004). Available data suggest that people acclimate rapidly to the presence of sulfates in their drinking water.
No upper limit likely to cause detrimental human health effects has been determined for sulfate in drinking water. However, concentrations of 500–750 mg/L may cause a temporary mild laxative effect, although doses of several thousand milligrams per liter generally do not cause any long-term ill effects. Because of the laxative effects resulting from ingestion of drinking water containing high sulfate levels, the EPA recommends that health authorities be notified of sources of drinking water that contain sulfate concentrations in excess of 500 mg/L.
The presence of sulfate can adversely affect the taste of drinking water, imparting a bitter taste. The lowest taste threshold concentration for sulfate is approximately 250 mg/L as sodium salt, but higher as calcium or magnesium salts (up to 1000 mg/L).
[Environmental Fate]

Nearly all natural surface waters and shallow groundwaters contain sulfate anions. Sulfate is commonly found as a prominent component of unpolluted waters and is included among the six major surface and shallow groundwater ions (Na+ , Ca+ , Mg+Cl− , (HCO3)2− , and (SO4)2−), second to bicarbonate as the most abundant anion in most freshwaters. Sulfur is an essential plant and animal nutrient, and sulfate is the most common inorganic form of sulfur in aerobic environments. Sulfate water concentrations that are too low have a detrimental effect on both land and aquatic plant growth.
Sulfate is redox sensitive and is bacterially reduced to sulfide ion under anaerobic conditions. Sulfide may be released to the atmosphere as H2S gas or precipitated as insoluble metal sulfides. Oxidation of sulfides returns sulfur to the sulfate form.
Sulfates may be leached from most sedimentary rocks, including shales, with the most appreciable contributions from such sulfate deposits as gypsum (CaSO4·2H2O) and anhydrite (CaSO4 ). The oxidation of sulfur-bearing organic materials can con- tribute sulfates to waters.
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